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Journal of Medicine and Pharmacy","Tạp chí Y Dược học Cần Thơ",{"EN":487,"VI":488},"\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">04\u002F10\u002F2015 Ministry of Information and Communications allowed Can Tho journal of medicine and pharmacy to operate (102 \u002FGP-BTTTT)\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">07\u002F16\u002F2015 Can Tho journal of medicine and pharmacy is internationally recognized: ISSN 2354-1210\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">In 2016, The journal has been included in the list of medical science journals by The State Council for professorship which is awarded a work score of 0-0.5 points for a published article.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Can Tho Journal of Medicine and Pharmacy welcome original works that haven’t been submitted or published in other medical journals. Posts must contain content related to one of the journal’s categories.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The content published\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The journal is divided into 3 categories:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Scientific research article: are valuable scientific works, which have been researched and accepted.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Overview of medicine, biology and pharmacy: serving the objective of continuing training in the fields of medicine, biology and pharmacy; to systematize classical and modern knowledge.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Update information on new knowledge about medicine, biology, pharmacy in the country and in the world.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Scope\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Publication and introduction of scientific research in the fields:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Medicine (internal medicine, surgery, pediatrics, obstetrics and gynecology, odonto-stomatology, laboratory, oncology, traditional medicine, nursing).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Biology (genetics, biotechnology).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">+ Pharmacology (pharmaceutics, drug quality analysis-control, synthetic pharmaceutical chemistry, biochemistry, pharmacognosy, botany, clinical pharmacy).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- To enhance the quality of undergraduate, postgraduate education, scientifically researching and meet the necessary treatment in hospital.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Introducing the updated domestic and oversea information about science technology to promote scientific research and exchanging technology in local, other universities.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">- Exchanging pharmaceutical and medical information for social health developing in the Mekong Delta and Vietnam.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">The object\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Postgraduate students, student of Can Tho University of Medicine and Pharmacy, scientists from schools, research institutes, hospitals, health centers, pharmaceutical companies of the Mekong Delta; other provinces and regions in Vietnam and other country.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Address\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Headquarters of Can Tho Journal of Medicine and Pharmacy, located Scientific Research and International Cooperation Office: 179 Nguyen Van Cu Street, An Khanh Ward, Ninh Kieu District, Can Tho City, Vietnam.\u003C\u002Fspan>\u003C\u002Fp>","\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Ngày 16\u002F7\u002F2015, Tạp chí Y Dược học Cần Thơ được cấp chỉ số quốc tế: ISSN 2354-1210.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Từ tháng 4\u002F2016, Tạp chí đã được Hội đồng Giáo sư ngành Y đưa vào danh sách các tạp chí khoa học Y học được tính điểm công trình 0-0,5 điểm cho một bài báo đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Năm 2020 Tạp chí Y Dược học Cần Thơ đã được phê duyệt vào danh mục của các Hội đồng Giáo sư ngành Dược học được tính điểm công trình 0-0,5 điểm cho một bài báo đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ ra 12 số\u002Fnăm, 180-200 trang\u002Fsố.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Từ tháng 12\u002F2022 Tạp chí Y Dược học Cần Thơ là thành viên của hệ thống Crossref và từ tháng 01\u002F2023 tạp chí thực hiện bình duyệt online kín 2 chiều nhằm tăng tính minh bạch, tin cậy của các công trình nghiên cứu khoa học và đảm bảo tốt nhất chất lượng khoa học của bài viết.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tôn chỉ, mục đích và phạm vi của tạp chí\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tôn chỉ và mục đích hoạt động của tạp chí: xuất bản nhằm mục đích phổ biến kết quả từ các đề tài nghiên cứu khoa học; giao lưu trao đổi khoa học, chia sẻ kinh nghiệm, học tập, đồng thời cập nhật thông tin khoa học mới trong các lĩnh vực y, sinh, dược học trong và ngoài nước.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Phạm vi của tạp chí: Tạp chí xuất bản được chia thành 3 chuyên mục: (i) Bài báo nghiên cứu khoa học là kết quả công trình nghiên cứu khoa học có giá trị đã được triển khai nghiên cứu, (ii) Bài tổng quan y, sinh, dược học: phục vụ mục tiêu đào tạo liên tục trong lĩnh vực y, sinh, dược học; nhằm hệ thống hóa những kiến thức kinh điển và hiện đại; (iii) Thông tin cập nhật kiến thức mới về y, sinh, dược học trong nước và trên thế giới.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Chính sách truy cập mở\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ áp dụng chính sách truy cập mở đối với các bài báo đã xuất bản đến với độc giả, nhằm mở rộng cơ hội tiếp cận các kết quả nghiên cứu chất lượng cao và tăng cường trao đổi kiến thức. Tạp chí đăng tải trực tuyến (miễn phí) toàn văn các bài báo được công bố trên website của Tạp chí (https:\u002F\u002Ftapchi.ctump.edu.vn).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đạo đức xuất bản\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ cam kết tuân thủ đạo đức xuất bản phù hợp với các hướng dẫn và tiêu chuẩn của the Committee on Publication Ethics (COPE), tuân thủ các nguyên tắc của COPE’s Core Practices, Best Practices Guidelines for Journal Editors và Guidelines on Good Publication Practices.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Bản thảo bài báo chỉ được chấp nhận khi được tác giả chịu trách nhiệm chính cam kết các nội dung sau: Các nội dung của bản thảo chưa được đăng tải toàn bộ hoặc một phần ở các tạp chí khác; Tất cả các tác giả đều có đóng góp một cách đáng kể vào quá trình nghiên cứu hoặc chuẩn bị bản thảo và cùng chịu trách nhiệm về các nội dung của bản thảo; Tuân thủ các biện pháp đảm bảo đạo đức nghiên cứu (ví dụ thỏa thuận đồng ý tham gia nghiên cứu).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Cam kết bảo mật\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí cam kết thực hiện và tuân thủ các quy định của luật và các văn bản hướng dẫn liên quan đến bảo mật thông tin cá nhân trên không gian mạng. Các thông tin mà người dùng (tác giả, độc giả, biên tập viên, người phản biện) nhập vào các biểu mẫu trên Hệ thống Quản lý xuất bản trực tuyến của tạp chí chỉ được sử dụng vào các mục đích đã được tuyên bố rõ ràng và sẽ không được cung cấp cho bất kỳ bên thứ ba nào khác, hay dùng vào bất kỳ mục đích nào khác.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Phí gửi bài\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Lệ phí gửi đăng bài: 1.000.000đ\u002Fbài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Lệ phí gửi đăng nhanh: 1.500.000đ\u002Fbài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đối với tác giả là cán bộ viên chức thuộc Trường Đại học Y Dược Cần Thơ thì được hỗ trợ 50% lệ phí gửi đăng bài.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Đối với sinh viên thực hiện đề tài nghiên cứu khoa học cấp trường được hỗ trợ 100% lệ phí đăng bài ( Tác giả gửi đính kèm “ Quyết định về việc giao tổ chức thực hiện đề tài nghiên cứu khoa học cấp Trường của sinh viên”).\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Hình thức nộp lệ phí:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Tiền mặt:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Nộp trực tiếp tại Phòng Tài chính - Kế toán, Trường Đại học Y Dược Cần Thơ, số 179 Nguyễn Văn Cừ, P. An Khánh, Q. Ninh Kiều, thành phố Cần Thơ.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Chuyển khoản:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tên Tài khoản: Trường ĐHYD Cần Thơ, Số TK: 0111000115668, tại ngân hàng Vietcombank chi nhánh Cần Thơ.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Thời gian: Áp dụng từ ngày 01\u002F02\u002F2023.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">* Phí gửi bài không được hoàn trả khi bài viết bị từ chối hoặc tác giả xin rút bài viết.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Quy trình phản biện bài báo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tạp chí Y Dược học Cần Thơ thực hiện quy trình phản biện kín hai chiều nghiêm ngặt. Danh tính của những người phản biện không được tiết lộ cho các tác giả và ngược lại. Quy trình thẩm định bài báo đăng gồm các bước sau:\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tiếp nhận bản thảo\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Tác giả liên hệ gửi bản thảo đến Tạp chí qua hệ thống trực tuyến tại website: https:\u002F\u002Ftapchi.ctump.edu.vn. Hướng dẫn về cách đăng ký, gửi bài và chuẩn bị bản thảo được cung cấp trên website của Tạp chí.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Sàng lọc sơ bộ\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Sau khi Tòa soạn nhận được bài báo của tác giả, Ban Thư ký sẽ tiến hành kiểm tra sơ bộ bài báo (các yêu cầu về nội dung và hình thức). Những bài báo không đúng quy cách hoặc có nội dung không phù hợp hoặc vi phạm bản quyền sẽ bị từ chối (Ban Thư ký thông báo phản hồi đến tác giả trong vòng 1 tuần). Những bài báo đủ điều kiện, được Ban Thư ký tòa soạn chuyển đến Ban Biên tập có cùng chuyên môn với nội dung bài báo để đề xuất người phản biện. Thời gian kể từ khi Ban Biên tập nhận bài báo đến khi đề xuất người phản biện bài báo chậm nhất là 5 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Vòng phản biện\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Ban Thư ký gửi bài và yêu cầu phản biện đến 02 phản biện độc lập.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Các phản biện gởi nhận xét cho Ban Thư ký. Thời gian từ khi gửi bài cho phản biện đến khi nhận ý kiến của phản biện tối đa là 20 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Xử ký kết quả phản biện\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Nếu ý kiến đồng ý cho đăng và không cần chỉnh sửa, Ban Thư ký tiếp tục đăng bài theo qui trình.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Nếu ý kiến đồng ý đăng và cần chỉnh sửa, Ban Thư ký sẽ thông tin đến tác giả chỉnh sửa theo yêu cầu của người phản biện. Thời gian chỉnh sửa và gửi lại kéo dài không quá 2 tuần, từ khi tác giả bài báo nhận được thông tin (Quá trình này có thể lặp lại tối đa 2 lần\u002F1 bài báo). Khi có sự thống nhất, đồng ý của người phản biện; bài báo được tiếp tục đăng theo qui trình.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">3. Những bài báo có chất lượng không đạt yêu cầu, cả 2 phản biện không đồng ý cho đăng sẽ bị Tòa soạn từ chối đăng.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">Xuất bản\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">1. Ban Thư ký tổng hợp các bản thảo đã được tác giả hoàn thiện sau thẩm định trình Ban Biên tập xem xét, Tổng Biên tập phê duyệt, quyết định bài đăng theo các tiêu chí: sự phù hợp nội dung với tôn chỉ và mục đích, thể loại bài viết (ưu tiên các bài có bài có nghiên cứu chuyên sâu, hàm lượng khoa học cao), đóng góp mới bài báo, bài báo được ưu tiên đăng trong số gần nhất của Tạp chí theo thứ tự: tính thời sự, chất lượng bài báo và thời gian gửi bài.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">2. Ban Biên tập và Ban Thư ký biên tập bản thảo, chế bản, đọc rà soát lỗi. Thời gian hoàn thành từ 10-15 ngày.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">3. Ban Thư ký có trách nhiệm thông báo cho tác giả bài báo (bằng e-mail) về tình hình phê duyệt bài báo, thời gian, số kỳ, tập xuất bản bài báo theo qui định.\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>\u003Cp>\u003Cspan style=\"color: rgb(0, 0, 0);\">4. Danh sách bài báo theo số Tạp chí được in ấn và phát hành trong năm định kỳ được công bố chính thức trên website: https:\u002F\u002Ftapchi.ctump.edu.vn\u003C\u002Fspan>\u003C\u002Fp>\u003Cp>\u003Cbr>\u003C\u002Fp>",{"VOID":490},"wcQ1uqwAAAAJ","2023-05-30T08:17:21.868+00:00",[],[494],{"id":495,"createTime":28,"updateTime":28,"relativeEntities":496,"slug":28,"properties":497,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":507,"parentIds":508,"statistic":28},"6413896b-eca9-442b-a73f-182a58a0ce40",[],{"title":498,"address":501,"country":504,"abbreviation":505},{"EN":499,"VI":500},"Can Tho University of Medicine and Pharmacy","Trường Đại học Y Dược Cần Thơ",{"EN":502,"VI":503},"No 179, Nguyen Van Cu street, An Khanh ward, Ninh Kieu district, Can Tho city, Vietnam","Số 179, đường Nguyễn Văn Cừ, phường An Khánh, quận Ninh Kiều, thành phố Cần Thơ, Việt Nam",{"VOID":15},{"VOID":506},"ctump","http:\u002F\u002Fwww.ctump.edu.vn\u002F",[],[],"https:\u002F\u002Ftapchi.ctump.edu.vn\u002Findex.php\u002Fctump",{"impactFactor":32,"impactFactorByYear":512,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":514,"totalPublicationByYear":515,"totalCitation":520,"totalCitationByYear":521,"totalCitationPerPublication":108,"totalCitationPerPublicationByYear":523,"hindexLast5Year":45,"hindex":45},{"2022":513,"2023":111,"2024":106},0.01,1556,{"2020":47,"2021":516,"2022":517,"2023":518,"2024":519,"2025":122},57,306,801,358,161,{"2021":146,"2022":280,"2023":522},99,{"2021":524,"2022":318,"2023":104},0.23,{"impactFactor":28,"impactFactorByYear":28,"i10Index":123,"i10IndexLast5Year":123,"totalPublication":526,"totalPublicationByYear":527,"totalCitation":526,"totalCitationByYear":528,"totalCitationPerPublication":40,"totalCitationPerPublicationByYear":531,"hindexLast5Year":49,"hindex":49},476,{"0":205,"2019":123,"2021":139,"2022":459,"2023":451,"2024":357,"2025":49,"2026":48},{"2021":42,"2022":123,"2023":161,"2024":529,"2025":360,"2026":530},136,83,{"2021":105,"2022":513,"2023":532,"2024":127,"2025":533,"2026":534},0.62,25.43,13.83,{"id":536,"createTime":537,"updateTime":382,"relativeEntities":538,"slug":539,"properties":540,"entityType":25,"verifyStatus":26,"verifyTime":28,"verifyNote":28,"languages":552,"translateLanguages":28,"viewCount":133,"subjectFields":553,"manageAffiliations":554,"indexDatabases":555,"url":556,"thumbnailPath":557,"statistic":558,"gsStatistic":594,"type":55,"analyzePriority":28},"6984a56a-db70-403b-9cc4-4013e1ceaffa","2023-05-09T06:47:40.346+00:00",[],"T%E1%BA%A1p%20ch%C3%AD%20Nghi%C3%AAn%20c%E1%BB%A9u%20n%C6%B0%E1%BB%9Bc%20ngo%C3%A0i",{"country":541,"issn":542,"title":544,"introduce":547,"gsId":550},{"VOID":15},{"VOID":543},"25252445",{"EN":545,"VI":546},"VNU Journal of Foreign Studies","Tạp chí Nghiên cứu nước ngoài",{"EN":548,"VI":549},"{\"ops\":[{\"insert\":\"\\n\\nThe \\n\"},{\"attributes\":{\"italic\":true},\"insert\":\"VNU Journal of Science\"},{\"insert\":\"\\n was established in 1985 for the publication of national and international research papers in all fields of natural sciences and technology, social sciences and humanities. 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SCIE","scie",[922,813],"SCIE","https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002Fnull",[925,926,927],"f5dadec7-bbcc-41b5-8118-407ab26c6120","8d10567b-4ae4-42f8-b554-ff4a4364e08f","6ba93058-aeb5-478b-90cc-5ee2ef232d95",{"id":929,"indexDatabase":930,"url":935,"indexYears":936,"academicFieldIds":937,"indexDatabaseRanking":940},"73b334d8-2159-468d-a46c-e0f690a893ba",{"id":786,"createTime":28,"updateTime":28,"relativeEntities":931,"label":932,"description":933,"key":792,"publicationTags":934,"standard":28},[],{"EN":789,"VI":789},{"EN":789,"VI":791},[794],"https:\u002F\u002Fwww.scopus.com\u002Fsourceid\u002F130095","2004-2025",[938,939],"5901a6f0-93ba-4108-a5df-b363e796a7cf","00d998e9-482e-43d4-a4d8-cf5e4859b15e","SCOPUS__Q1",{"impactFactor":32,"impactFactorByYear":942,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":943,"totalPublicationByYear":944,"totalCitation":46,"totalCitationByYear":946,"totalCitationPerPublication":32,"totalCitationPerPublicationByYear":947,"hindexLast5Year":40,"hindex":40},{"2023":317},1083,{"2004":145,"2005":128,"2006":199,"2007":132,"2008":199,"2009":142,"2010":132,"2011":142,"2012":141,"2013":151,"2014":600,"2015":159,"2016":281,"2017":688,"2018":159,"2019":945,"2020":358,"2021":451,"2022":829,"2023":155,"2024":136},87,{"2022":46},{"2022":112},{"meta":949,"data":951},{"total":950},"1392",[952,1116,1253,1377,1552,1687,1857,2116,2295,2498],{"id":953,"createTime":954,"updateTime":955,"relativeEntities":956,"slug":957,"properties":958,"entityType":967,"verifyStatus":26,"verifyTime":955,"verifyNote":968,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":969,"fullTextUrl":28,"authors":970,"publicationType":1060,"publisherRelationship":1061,"citationCount":28,"citationInfo":28,"publishDate":1112,"publishYear":1113,"citationAnalyzeStatus":880,"lastCitationAnalyze":28,"indexDatabases":1114,"openAccess":28,"references":28,"isForceReanalyzing":1115},"0011e3bc-f948-49b6-b055-9d2c133ab6b0","2023-12-08T04:43:19.593+00:00","2025-02-18T16:06:24.279+00:00",[],"Large-scale-changes-in-cortical-dynamics-triggered-by-repetitive-somatosensory-electrical-stimulation",{"abstract":959,"title":961,"references":963,"doi":965},{"EN":960},"Repetitive somatosensory electrical stimulation (SES) of forelimb peripheral nerves is a promising therapy; studies have shown that SES can improve motor function in stroke subjects with chronic deficits. However, little is known about how SES can directly modulate neural dynamics. Past studies using SES have primarily used noninvasive methods in human subjects. Here we used electrophysiological recordings from the rodent primary motor cortex (M1) to assess how SES affects neural dynamics at the level of single neurons as well as at the level of mesoscale dynamics. We performed acute extracellular recordings in 7 intact adult Long Evans rats under ketamine-xylazine anesthesia while they received transcutaneous SES. We recorded single unit spiking and local field potentials (LFP) in the M1 contralateral to the stimulated arm. We then compared neural firing rate, spike-field coherence (SFC), and power spectral density (PSD) before and after stimulation. Following SES, the firing rate of a majority of neurons changed significantly from their respective baseline values. There was, however, a diversity of responses; some neurons increased while others decreased their firing rates. Interestingly, SFC, a measure of how a neuron’s firing is coupled to mesoscale oscillatory dynamics, increased specifically in the δ-band, also known as the low frequency band (0.3- 4 Hz). This increase appeared to be driven by a change in the phase-locking of broad-spiking, putative pyramidal neurons. These changes in the low frequency range occurred without a significant change in the overall PSD. Repetitive SES significantly and persistently altered the local cortical dynamics of M1 neurons, changing both firing rates as well as the SFC magnitude in the δ-band. Thus, SES altered the neural firing and coupling to ongoing mesoscale dynamics. Our study provides evidence that SES can directly modulate cortical dynamics.",{"EN":962},"Large-scale changes in cortical dynamics triggered by repetitive somatosensory electrical stimulation",{"VOID":964},"Johansson RS, Flanagan JR. Coding and use of tactile signals from the fingertips in object manipulation tasks. 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Neurology. 1996;47(2):508–20.\nWang X, Merzenich MM, Sameshima K, Jenkins WM. Remodelling of hand representation in adult cortex determined by timing of tactile stimulation. Nature. 1995;378(6552):71–5.\nWu CW, Seo HJ, Cohen LG. Influence of electric somatosensory stimulation on paretic-hand function in chronic stroke. Arch Phys Med Rehabil. 2006;87(3):351–7.\nConforto AB, Ferreiro KN, Tomasi C, dos Santos RL, Moreira VL, Marie SK, Baltieri SC, Scaff M, Cohen LG. Effects of somatosensory stimulation on motor function after subacute stroke. Neurorehabil Neural Repair. 2010;24(3):263–72.\nCelnik P, Hummel F, Harris-Love M, Wolk R, Cohen LG. Somatosensory stimulation enhances the effects of training functional hand tasks in patients with chronic stroke. Arch Phys Med Rehabil. 2007;88(11):1369–76.\nLuft AR, Kaelin-Lang A, Hauser TK, Buitrago MM, Thakor NV, Hanley DF, Cohen LG. Modulation of rodent cortical motor excitability by somatosensory input. Exp Brain Res. 2002;142(4):562–9.\nGolaszewski SM, Bergmann J, Christova M, Kunz AB, Kronbichler M, Rafolt D, Gallasch E, Staffen W, Trinka E, Nardone R. Modulation of motor cortex excitability by different levels of whole-hand afferent electrical stimulation. Clin Neurophysiol. 2012;123(1):193–9.\nTinazzi M, Zarattini S, Valeriani M, Romito S, Farina S, Moretto G, Smania N, Fiaschi A, Abbruzzese G. Long-lasting modulation of human motor cortex following prolonged transcutaneous electrical nerve stimulation (TENS) of forearm muscles: evidence of reciprocal inhibition and facilitation. Exp Brain Res. 2005;161(4):457–64.\nTu-Chan AP, Natraj N, Godlove J, Abrams G, Ganguly K. Effects of somatosensory electrical stimulation on motor function and cortical oscillations. J Neuroeng Rehabil. 2017;14(1):113.\nBuzsaki G. Neural syntax: cell assemblies, synapsembles, and readers. Neuron. 2010;68(3):362–85.\nRamanathan DS, Guo L, Gulati T, Davidson G, Hishinuma AK, Won SJ, Knight RT, Chang EF, Swanson RA, Ganguly K. Low-frequency cortical activity is a neuromodulatory target that tracks recovery after stroke. Nat Med. 2018;24(8):1257–67.\nSadtler PT, Quick KM, Golub MD, Chase SM, Ryu SI, Tyler-Kabara EC, Yu BM, Batista AP. Neural constraints on learning. Nature. 2014;512(7515):423–6.\nChurchland MM, Cunningham JP, Kaufman MT, Foster JD, Nuyujukian P, Ryu SI, Shenoy KV. Neural population dynamics during reaching. Nature. 2012;487(7405):51–6.\nMitra PP, Pesaran B. Analysis of dynamic brain imaging data. Biophys J. 1999;76(2):691–708.\nGulati T, Guo L, Ramanathan DS, Bodepudi A, Ganguly K. Neural reactivations during sleep determine network credit assignment. Nat Neurosci. 2017;20(9):1277–84.\nVinck M, Womelsdorf T, Buffalo EA, Desimone R, Fries P. Attentional modulation of cell-class-specific gamma-band synchronization in awake monkey area v4. Neuron. 2013;80(4):1077–89.\nBuzsaki G, Wang XJ. Mechanisms of gamma oscillations. Annu Rev Neurosci. 2012;35:203–25.\nOkun M, Steinmetz N, Cossell L, Iacaruso MF, Ko H, Bartho P, Moore T, Hofer SB, Mrsic-Flogel TD, Carandini M, et al. Diverse coupling of neurons to populations in sensory cortex. Nature. 2015;521(7553):511–5.\nMitchell JF, Sundberg KA, Reynolds JH. Spatial attention decorrelates intrinsic activity fluctuations in macaque area V4. Neuron. 2009;63(6):879–88.\nGulati T, Won SJ, Ramanathan DS, Wong CC, Bodepudi A, Swanson RA, Ganguly K. Robust neuroprosthetic control from the stroke perilesional cortex. J Neurosci. 2015;35(22):8653–61.\nCastro-Alamancos MA. Dynamics of sensory thalamocortical synaptic networks during information processing states. Prog Neurobiol. 2004;74(4):213–47.\nGulati T, Ramanathan DS, Wong CC, Ganguly K. Reactivation of emergent task-related ensembles during slow-wave sleep after neuroprosthetic learning. 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Different forms of synaptic plasticity in somatosensory and motor areas of the neocortex. J Neurosci. 1995;15(7 Pt 2):5324–33.\nZhang X, Poo MM. Progress in neural plasticity. Sci China Life Sci. 2010;53(3):322–9.\nFrancis JT, Song W. Neuroplasticity of the sensorimotor cortex during learning. Neural Plasticity. 2011;2011:310737.\nMarkram H, Lubke J, Frotscher M, Sakmann B. Regulation of synaptic efficacy by coincidence of postsynaptic APs and EPSPs. Science. 1997;275(5297):213–5.\nRebesco JM, Miller LE. Altering function in cortical networks by short-latency, paired stimulation. Conf Proc IEEE Eng Med Biol Soc. 2010;2010:1674–7.\nSawaki L, Wu CW, Kaelin-Lang A, Cohen LG. Effects of somatosensory stimulation on use-dependent plasticity in chronic stroke. Stroke. 2006;37(1):246–7.\nMerzenich MM, Nelson RJ, Stryker MP, Cynader MS, Schoppmann A, Zook JM. Somatosensory cortical map changes following digit amputation in adult monkeys. J Comp Neurol. 1984;224(4):591–605.\nKaas JH: Chapter 30 – Somatosensory System. In: The Human Nervous System. edn. Edited by Mai JaP, G: Academic Press; 2014: 1428.\nHall TM, de Carvalho F, Jackson A. A common structure underlies low-frequency cortical dynamics in movement, sleep, and sedation. Neuron. 2014;83(5):1185–99.\nYilmaz O, Cho W, Braun C, Birbaumer N, Ramos-Murguialday A. Movement related cortical potentials in severe chronic stroke. Conf Proc IEEE Eng Med Biol Soc. 2013;2013:2216–9.\nGanguly K, Byl NN, Abrams GM. Neurorehabilitation: motor recovery after stroke as an example. Ann Neurol. 2013;74(3):373–81.",{"VOID":966},"10.1186\u002Fs12984-019-0520-1","PUBLICATION","Auto Verify","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-019-0520-1",[971,996,1018,1040],{"id":972,"sortIndex":32,"researcher":28,"roles":973,"affiliations":975,"properties":993,"displayName":995,"givenName":28,"familyName":28},"8c0ab288-a6c1-4ea5-a02c-75986920a761",[974],"AUTHOR",[976,984],{"id":977,"sortIndex":32,"affiliation":978,"properties":28},"17293d2a-a7ab-490c-85e9-b73defca7770",{"id":977,"createTime":28,"updateTime":28,"relativeEntities":979,"slug":28,"properties":980,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":983,"statistic":28},[],{"title":981},{"VI":982},"Neurology & Rehabilitation Service, San Francisco Veterans Affairs Medical Center, San Francisco, USA",[],{"id":985,"sortIndex":40,"affiliation":986,"properties":992},"e5e58bfc-a4d1-42d7-8388-fcb4315857d5",{"id":985,"createTime":28,"updateTime":28,"relativeEntities":987,"slug":28,"properties":988,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":991,"statistic":28},[],{"title":989},{"EN":990},"Department of Neurology, University of California, San Francisco, San Francisco, USA",[],{},{"title":994},{"VI":995},"April K. Hishinuma",{"id":997,"sortIndex":40,"researcher":28,"roles":998,"affiliations":999,"properties":1015,"displayName":1017,"givenName":28,"familyName":28},"9cb2b250-7ce7-4f79-8144-24b0ecfb1e82",[974],[1000,1006],{"id":985,"sortIndex":32,"affiliation":1001,"properties":28},{"id":985,"createTime":28,"updateTime":28,"relativeEntities":1002,"slug":28,"properties":1003,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1005,"statistic":28},[],{"title":1004},{"EN":990},[],{"id":1007,"sortIndex":40,"affiliation":1008,"properties":1014},"ab8de475-b09e-469e-a13f-9b57dc9b9e5f",{"id":1007,"createTime":28,"updateTime":28,"relativeEntities":1009,"slug":28,"properties":1010,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1013,"statistic":28},[],{"title":1011},{"VI":1012},"Department of Biomedical Sciences and Neurology, Cedars-Sinai, Los Angeles, USA",[],{},{"title":1016},{"VI":1017},"Tanuj Gulati",{"id":1019,"sortIndex":123,"researcher":28,"roles":1020,"affiliations":1021,"properties":1037,"displayName":1039,"givenName":28,"familyName":28},"6437b16e-f801-4978-a7ce-7039ea9b81d1",[974],[1022,1028],{"id":985,"sortIndex":32,"affiliation":1023,"properties":28},{"id":985,"createTime":28,"updateTime":28,"relativeEntities":1024,"slug":28,"properties":1025,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1027,"statistic":28},[],{"title":1026},{"EN":990},[],{"id":1029,"sortIndex":40,"affiliation":1030,"properties":1036},"6f8fbaca-67bf-4865-aa70-42ceb6884aca",{"id":1029,"createTime":28,"updateTime":28,"relativeEntities":1031,"slug":28,"properties":1032,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1035,"statistic":28},[],{"title":1033},{"VI":1034},"Department of Neurosurgery, The University of Texas Health Science Center at Houston, Houston, USA",[],{},{"title":1038},{"VI":1039},"Mark J. 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However, the relatively high energy requirements and the presence of undesired excitation at the onset of the kilohertz-frequency (KHF) signals used for block pose obstacles to effective translation. Frequency, electrode geometry, and waveform shape are known to influence block threshold and onset response, but available data provide a limited understanding of how to select these parameters to optimize nerve block. We evaluated KHF nerve block in rat tibial nerve across frequencies (5–60 kHz), electrode geometries (monopolar, bipolar, and tripolar), and waveform shapes. We present a novel Fourier-based method for constructing composite signals that systematically sample the KHF waveform design space. The lowest frequencies capable of blocking (5–16 kHz) were not the most energy-efficient among the tested frequencies. Further, bipolar cuffs required the largest current and power to block, monopolar cuffs required the lowest current, and both tripolar and monopolar cuffs required the lowest power. Tripolar cuffs produced the smallest onset response across frequencies. Composite signals comprised of a first harmonic sinusoid at fundamental frequency (f0) superposed on a second harmonic sinusoid at 2f0 could block at lower threshold and lower onset response compared to the constituent sinusoids alone. This effect was strongly dependent on the phase of the second harmonic and on the relative amplitudes of the first and second harmonics. This effect was also dependent on electrode geometry: monopolar and tripolar cuffs showed clear composite signal effects in most experiments; bipolar cuffs showed no clear effects in most experiments. Our data provide novel information about block threshold and onset response at the boundary of frequencies that can block. Our results also show an interaction between spatial (cuff geometry) and temporal (frequency and waveform shape) parameters. Finally, while previous studies suggested that temporal parameters could reduce onset response only in exchange for increased block threshold (or vice versa), our results show that waveform shape influences KHF response in ways that can be exploited to reduce both energy and onset responses.",{"EN":1124},"Spatiotemporal parameters for energy efficient kilohertz-frequency nerve block with low onset response",{"VOID":1126},"Horn CC, Ardell JL, Fisher LE. Electroceutical targeting of the autonomic nervous system. Physiology. 2019;34(2):150–62.\nBhadra N, Kilgore KL. High-frequency electrical conduction block of mammalian peripheral motor nerve. Muscle Nerve. 2005;32(6):782–90.\nPelot NA, Grill WM. In vivo quantification of excitation and kilohertz frequency block of the rat vagus nerve. J Neural Eng. 2020;17(2):026005.\nPeña E, Pelot NA, Grill WM. Quantitative comparisons of block thresholds and onset responses for charge-balanced kilohertz frequency waveforms. J Neural Eng. 2020;17(4):046048.\nTai C, Roppolo JR, de Groat WC. Response of external urethral sphincter to high frequency Biphasic Electrical Stimulation of Pudendal nerve. J Urol. 2005;174(2):782–6.\nGreen DB, Kilgore JA, Bender SA, Daniels RJ, Gunzler DD, Vrabec TL, et al. Effects of waveform shape and electrode material on KiloHertz frequency alternating current block of mammalian peripheral nerve. Bioelectron Med. 2022;8(1):11.\nAckermann DM, Foldes EL, Bhadra N, Kilgore KL. Effect of bipolar Cuff Electrode Design on Block Thresholds in high-frequency electrical neural conduction block. IEEE Trans Neural Syst Rehabil Eng. 2009;17(5):469–77.\nAckermann DM, Bhadra N, Foldes EL, Wang X, Kilgore KL. Effect of nerve Cuff Electrode geometry on Onset Response firing in high-frequency nerve conduction block. IEEE Trans Neural Syst Rehabil Eng. 2010;18(6):658–65.\nPatel YA, Kim BS, Rountree WS, Butera RJ. Kilohertz Electrical stimulation nerve conduction block: Effects of Electrode Surface Area. IEEE Trans Neural Syst Rehabil Eng. 2017;25(10):1906–16.\nPercie du Sert N, Hurst V, Ahluwalia A, Alam S, Avey MT, Baker M et al. The ARRIVE guidelines 2.0: Updated guidelines for reporting animal research. Boutron I, editor. PLoS Biol. 2020;18(7):e3000410.\nFranke M, Bhadra N, Bhadra N, Kilgore K. Direct current contamination of kilohertz frequency alternating current waveforms. J Neurosci Methods. 2014;232:74–83.\nPelot NA, Behrend CE, Grill WM. Modeling the response of small myelinated axons in a compound nerve to kilohertz frequency signals. J Neural Eng. 2017;14(4):046022.\nBhadra N, Foldes EL, Gerges MR, Ackermann DM, Bhadra N, Kilgore KL. Counted cycles method to measure the block inception time of kiloHertz frequency mammalian motor nerve block. J Neurosci Methods. 2020;333:108561.\nMedina LE, Grill WM. Volume conductor model of transcutaneous electrical stimulation with kilohertz signals. J Neural Eng. 2014;11(6):066012.\nPeña E, Pelot NA, Grill WM. Non-monotonic kilohertz frequency neural block thresholds arise from amplitude- and frequency-dependent charge imbalance. Sci Rep. 2021;11(1):5077.\nBhadra N, Lahowetz EA, Foldes ST, Kilgore KL. Simulation of high-frequency sinusoidal electrical block of mammalian myelinated axons. J Comput Neurosci. 2007;22(3):313–26.\nChang YC, Ahmed U, Jayaprakash N, Mughrabi I, Lin Q, Wu YC, et al. kHz-frequency electrical stimulation selectively activates small, unmyelinated vagus afferents. Brain Stimul. 2022;15(6):1389–404.\nCracchiolo M, Ottaviani MM, Panarese A, Strauss I, Vallone F, Mazzoni A, et al. Bioelectronic medicine for the autonomic nervous system: clinical applications and perspectives. J Neural Eng. 2021;18(4):041002.\nPavlov VA, Tracey KJ. Bioelectronic medicine: updates, challenges and paths forward. Bioelectron Med. 2019;5(1):1.\nAvendano-Coy J, Serrano-Munoz D, Taylor J, Goicoechea-Garcia C, Gomez-Soriano J. Peripheral nerve conduction block by high-frequency alternating currents: a systematic review. IEEE Trans Neural Syst Rehabil Eng. 2018;26(6):1131–40.\nWilliamson RP, Andrews BJ. Localized electrical nerve blocking. IEEE Trans Biomed Eng. 2005;52(3):362–70.\nBhadra N, Kilgore KL. High-frequency nerve conduction block. In: The 26th Annual International Conference of the IEEE Engineering in Medicine and Biology Society [Internet]. San Francisco, CA, USA: IEEE; 2004. p. 4729–32. http:\u002F\u002Fieeexplore.ieee.org\u002Fdocument\u002F1404309\u002F. Accessed 2 May 2019.\nBhadra N, Bhadra N, Kilgore K, Gustafson KJ. High frequency electrical conduction block of the pudendal nerve. J Neural Eng. 2006;1(2):180–7.\nGaunt RA, Prochazka A. Transcutaneously coupled. High-frequency Electrical stimulation of the pudendal nerve blocks external urethral sphincter contractions. Neurorehabil Neural Repair. 2009;23(6):615–26.\nTai C, Roppolo JR, de Groat WC. Block of external urethral sphincter contraction by high frequency electrical stimulation of pudendal nerve. J Urol. 2004;172(5 Pt 1):2069–72.\nAckermann DM, Ethier C, Foldes EL, Oby ER, Tyler D, Bauman M, et al. Electrical conduction block in large nerves: high-frequency current delivery in the nonhuman primate. Muscle Nerve. 2011;43(6):897–9.",{"VOID":1128},"10.1186\u002Fs12984-023-01195-8","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-023-01195-8",[1131,1146,1159],{"id":1132,"sortIndex":32,"researcher":28,"roles":1133,"affiliations":1134,"properties":1143,"displayName":1145,"givenName":28,"familyName":28},"6edb8242-89eb-4419-b9fd-80df67f288f6",[974],[1135],{"id":1136,"sortIndex":32,"affiliation":1137,"properties":28},"1904af0d-552e-44e3-927e-54977b6e3c4b",{"id":1136,"createTime":28,"updateTime":28,"relativeEntities":1138,"slug":28,"properties":1139,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1142,"statistic":28},[],{"title":1140},{"VI":1141},"Department of Biomedical Engineering, Duke University, Durham, USA",[],{"title":1144},{"VI":1145},"Edgar Peña",{"id":1147,"sortIndex":40,"researcher":28,"roles":1148,"affiliations":1149,"properties":1156,"displayName":1158,"givenName":28,"familyName":28},"2d14cbc7-ec09-4190-9a37-e34c2da2bcf1",[974],[1150],{"id":1136,"sortIndex":32,"affiliation":1151,"properties":28},{"id":1136,"createTime":28,"updateTime":28,"relativeEntities":1152,"slug":28,"properties":1153,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1155,"statistic":28},[],{"title":1154},{"VI":1141},[],{"title":1157},{"VI":1158},"Nicole A. Pelot",{"id":1160,"sortIndex":123,"researcher":28,"roles":1161,"affiliations":1162,"properties":1196,"displayName":1198,"givenName":28,"familyName":28},"311e3f88-6958-4b06-b9de-a4887863c303",[974],[1163,1169,1178,1187],{"id":1136,"sortIndex":32,"affiliation":1164,"properties":28},{"id":1136,"createTime":28,"updateTime":28,"relativeEntities":1165,"slug":28,"properties":1166,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1168,"statistic":28},[],{"title":1167},{"VI":1141},[],{"id":1170,"sortIndex":40,"affiliation":1171,"properties":1177},"71462239-64f0-45e4-8fd3-53a70ff4285e",{"id":1170,"createTime":28,"updateTime":28,"relativeEntities":1172,"slug":28,"properties":1173,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1176,"statistic":28},[],{"title":1174},{"VI":1175},"Department of Electrical and Computer Engineering, Duke University, Durham, USA",[],{},{"id":1179,"sortIndex":123,"affiliation":1180,"properties":1186},"0ba8312b-da0d-4207-9f38-e22a928ad665",{"id":1179,"createTime":28,"updateTime":28,"relativeEntities":1181,"slug":28,"properties":1182,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1185,"statistic":28},[],{"title":1183},{"VI":1184},"Department of Neurobiology, Duke University School of Medicine, Durham, USA",[],{},{"id":1188,"sortIndex":42,"affiliation":1189,"properties":1195},"57744aec-956e-4e0d-828a-ae02e2a3a69c",{"id":1188,"createTime":28,"updateTime":28,"relativeEntities":1190,"slug":28,"properties":1191,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1194,"statistic":28},[],{"title":1192},{"VI":1193},"Department of Neurosurgery, Duke University School of Medicine, Durham, USA",[],{},{"title":1197},{"VI":1198},"Warren M. Grill",{"url":1129,"publisher":1200,"properties":1245},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1201,"slug":872,"properties":1202,"entityType":25,"verifyStatus":880,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1205,"manageAffiliations":1214,"indexDatabases":1225,"url":28,"thumbnailPath":28,"statistic":1240,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1203,"title":1204},{"VOID":875},{"EN":877},[1206,1210],{"id":883,"createTime":28,"updateTime":28,"relativeEntities":1207,"label":1208,"description":1209,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":886},{},{"id":889,"createTime":28,"updateTime":28,"relativeEntities":1211,"label":1212,"description":1213,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":892},{},[1215,1220],{"id":896,"createTime":28,"updateTime":28,"relativeEntities":1216,"slug":28,"properties":1217,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1219,"statistic":28},[],{"title":1218},{"EN":900},[],{"id":903,"createTime":28,"updateTime":28,"relativeEntities":1221,"slug":28,"properties":1222,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1224,"statistic":28},[],{"title":1223},{"EN":907},[],[1226,1233],{"id":911,"indexDatabase":1227,"url":923,"indexYears":28,"academicFieldIds":1232,"indexDatabaseRanking":28},{"id":913,"createTime":28,"updateTime":28,"relativeEntities":1228,"label":1229,"description":1230,"key":920,"publicationTags":1231,"standard":28},[],{"EN":916,"VI":916},{"EN":918,"VI":919},[922,813],[925,926,927],{"id":929,"indexDatabase":1234,"url":935,"indexYears":936,"academicFieldIds":1239,"indexDatabaseRanking":940},{"id":786,"createTime":28,"updateTime":28,"relativeEntities":1235,"label":1236,"description":1237,"key":792,"publicationTags":1238,"standard":28},[],{"EN":789,"VI":789},{"EN":789,"VI":791},[794],[938,939],{"impactFactor":32,"impactFactorByYear":1241,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":943,"totalPublicationByYear":1242,"totalCitation":46,"totalCitationByYear":1243,"totalCitationPerPublication":32,"totalCitationPerPublicationByYear":1244,"hindexLast5Year":40,"hindex":40},{"2023":317},{"2004":145,"2005":128,"2006":199,"2007":132,"2008":199,"2009":142,"2010":132,"2011":142,"2012":141,"2013":151,"2014":600,"2015":159,"2016":281,"2017":688,"2018":159,"2019":945,"2020":358,"2021":451,"2022":829,"2023":155,"2024":136},{"2022":46},{"2022":112},{"pages":1246,"volume":1248},{"VOID":1247},"1-18",{"VOID":1249},"20","2023-06-05",2023,[922,940],{"id":1254,"createTime":1255,"updateTime":1256,"relativeEntities":1257,"slug":1258,"properties":1259,"entityType":967,"verifyStatus":26,"verifyTime":1256,"verifyNote":968,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1268,"fullTextUrl":28,"authors":1269,"publicationType":1060,"publisherRelationship":1324,"citationCount":28,"citationInfo":28,"publishDate":1374,"publishYear":1375,"citationAnalyzeStatus":880,"lastCitationAnalyze":28,"indexDatabases":1376,"openAccess":28,"references":28,"isForceReanalyzing":1115},"00a25488-fb87-42c3-9231-df6e05902d2b","2024-02-05T19:43:32.373+00:00","2024-12-30T10:10:52.412+00:00",[],"Feasibility-and-potential-effects-of-using-the-electro-dress-Mollii-on-spasticity-and-functioning-in-chronic-stroke",{"abstract":1260,"title":1262,"references":1264,"doi":1266},{"EN":1261},"Spasticity after lesions of central motor pathways may be disabling and there is a need for new, cost-effective treatment methods. One novel approach is offered by the electro-dress Mollii®, primarily designed to enhance reciprocal inhibition of spastic muscles by multifocal, transcutaneous antagonist stimulation. The Mollii® suit was set individually for 20 participants living with spasticity and hemiplegia after stroke and used in the home setting for 6 weeks. Usability and perceived effects were monitored by weekly telephone interviews. Outcome was assessed by use of the NeuroFlexor™ method for quantification of the neural component (NC) of resistance to passive stretch (spasticity), and the modified Ashworth scale (MAS) for total resistance, Fugl-Meyer Assessment of motor recovery for sensorimotor function in upper (FM-UE) and lower extremities (FM-LE), activity performance with the Action Research Arm Test (ARAT), Berg balance scale, 10 m and 6 min walk tests, and perceived functioning with the Stroke Impact Scale. Compliance was high (mean 19.25 of 21 sessions). Perceived positive effects were reported by 60% and most commonly related to decreased muscle tone (n = 9), improved gait pattern function (n = 7) and voluntary movement in the upper extremity (n = 6). On a group level, the NC decreased significantly in the wrist flexors of the affected hand (p = 0.023) and significant improvements according to FM-UE (p = 0.000) and FM-LE (p = 0.003) were seen after the intervention. No significant difference was detected with MAS or assessed activity performance, except for the ARAT (p = 0.000). FM-UE score change correlated significantly and fairly with the perceived effect in the upper extremity (r 0.498 p = 0.025) and in the corresponding analysis for the FM-LE and perceived effect in the lower extremity (r = 0.469 p = 0.037). This study indicates that the Mollii® method is feasible when used in the home setting to decrease spasticity and improve sensorimotor function. The results may guide a larger controlled study combined with rehabilitation interventions to enhance effects on activity and participation domains. \n                  NCT04076878\n                  \n                . Registered 2 September 2019 - Retrospectively registered",{"EN":1263},"Feasibility and potential effects of using the electro-dress Mollii on spasticity and functioning in chronic stroke",{"VOID":1265},"Lance JW. Spasticity: disordered motor control. In: Feldman RG, Young RR, Koella WP, editors. Symposium Synposis. 4th ed; 1980. p. 485–94.\nGracies JM. Pathophysiology of spastic paresis. II: emergence of muscle overactivity. Muscle Nerve. 2005;31(5):552–71.\nSommerfeld DK, Eek EU, Svensson AK, Holmqvist LW, von Arbin MH. Spasticity after stroke: its occurrence and association with motor impairments and activity limitations. Stroke. 2004;35(1):134–9.\nLundstrom E, Terent A, Borg J. Prevalence of disabling spasticity 1 year after first-ever stroke. Eur J Neurol. 2008;15(6):533–9.\nUrban PP, Wolf T, Uebele M, Marx JJ, Vogt T, Stoeter P, et al. Occurence and clinical predictors of spasticity after ischemic stroke. Stroke. 2010;41(9):2016–20.\nBakheit AM, Fedorova NV, Skoromets AA, Timerbaeva SL, Bhakta BB, Coxon L. The beneficial antispasticity effect of botulinum toxin type a is maintained after repeated treatment cycles. J Neurol Neurosurg Psychiatry. 2004;75(11):1558–61.\nBrashear A, Gordon MF, Elovic E, Kassicieh VD, Marciniak C, Do M, et al. Intramuscular injection of botulinum toxin for the treatment of wrist and finger spasticity after a stroke. N Engl J Med. 2002;347(6):395–400.\nMcCrory P, Turner-Stokes L, Baguley IJ, De Graaff S, Katrak P, Sandanam J, et al. Botulinum toxin a for treatment of upper limb spasticity following stroke: a multi-Centre randomized placebo-controlled study of the effects on quality of life and other person-centred outcomes. J Rehabil Med. 2009;41(7):536–44.\nAndringa A, van de Port I, van Wegen E, Ket J, Meskers C, Kwakkel G. Effectiveness of botulinum toxin treatment for upper limb spasticity Poststroke over different ICF domains: a systematic review and meta-analysis. Arch Phys Med Rehabil. 2019;100(9):1703–25.\nWard AB, Wissel J, Borg J, Ertzgaard P, Herrmann C, Kulkarni J, et al. Functional goal achievement in post-stroke spasticity patients: the BOTOX (R) economic spasticity trial (BEST). J Rehabil Med. 2014;46(6):504–13.\nWissel J, Ganapathy V, Ward AB, Borg J, Ertzgaard P, Herrmann C, et al. OnabotulinumtoxinA improves pain in patients with post-stroke spasticity: findings from a randomized, double-blind, placebo-controlled trial. J Pain Symptom Manag. 2016;52(1):17–26.\nGupta AD, Chu WH, Howell S, Chakraborty S, Koblar S, Visvanathan R, et al. A systematic review: efficacy of botulinum toxin in walking and quality of life in post-stroke lower limb spasticity. Syst Rev. 2018;7(1):1.\nMahmood A, Veluswamy SK, Hombali A, Mullick A, Manikandan N, Solomon JM. Effect of transcutaneous electrical nerve stimulation on spasticity in adults with stroke: a systematic review and meta-analysis. Arch Phys Med Rehabil. 2019;100(4):751–68.\nMills PB, Dossa F. Transcutaneous electrical nerve stimulation for Management of Limb Spasticity a systematic review. Am J Phys Med Rehab. 2016;95(4):309–18.\nMarcolino MAZ, Hauck M, Stein C, Schardong J, Pagnussat AS, Plentz RDM. Effects of transcutaneous electrical nerve stimulation alone or as additional therapy on chronic post-stroke spasticity: systematic review and meta-analysis of randomized controlled trials. Disabil Rehabil. 2018;1:1–13.\nPerez MA, Field-Fote EC, Floeter MK. Patterned sensory stimulation induces plasticity in reciprocal ia inhibition in humans. J Neurosci. 2003;23(6):2014–8.\nTinazzi M, Zarattini S, Valeriani M, Romito S, Farina S, Moretto G, et al. 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J Rehabil Med. 2013;45(7):630–6.\nGaverth J, Eliasson AC, Kullander K, Borg J, Lindberg PG, Forssberg H. Sensitivity of the NeuroFlexor method to measure change in spasticity after treatment with botulinum toxin a in wrist and finger muscles. J Rehabil Med. 2014;46(7):629–34.\nBohannon RW, Smith MB. Interrater reliability of a modified Ashworth scale of muscle spasticity. Phys Ther. 1987;67(2):206–7.\nFleuren JF, Voerman GE, Erren-Wolters CV, Snoek GJ, Rietman JS, Hermens HJ, et al. Stop using the Ashworth scale for the assessment of spasticity. J Neurol Neurosurg Psychiatry. 2010;81(1):46–52.\nFugl-Meyer AR, Jaasko L, Leyman I, Olsson S, Steglind S. The post-stroke hemiplegic patient. 1. A method for evaluation of physical performance. Scand J Rehabil Med. 1975;7(1):13–31.\nWade DT, Wood VA, Heller A, Maggs J, Langton HR. Walking after stroke. Measurement and recovery over the first 3 months. Scand J Rehabil Med. 1987;19(1):25–30.\nKosak M, Smith T. 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Upper Sadler River: Prentice Hall 912; 2000.\nPlantin J, Pennati GV, Roca P, Baron JC, Laurencikas E, Weber K, et al. Quantitative assessment of hand spasticity after stroke: imaging correlates and impact on motor recovery. Front Neurol. 2019;10:836.\nLorentzen J, Grey MJ, Crone C, Mazevet D, Biering-Sorensen F, Nielsen JB. Distinguishing active from passive components of ankle plantar flexor stiffness in stroke, spinal cord injury and multiple sclerosis. Clin Neurophysiol. 2010;121(11):1939–51.\nAlibiglou L, Rymer WZ, Harvey RL, Mirbagheri MM. The relation between Ashworth scores and neuromechanical measurements of spasticity following stroke. J Neuroeng Rehab. 2008;5:18.\nAndringa A, van Wegen E, van de Port I, Kwakkel G, Meskers C. Measurement properties of the NeuroFlexor device for quantifying neural and non-neural components of wrist hyper-resistance in chronic stroke. Front Neurol. 2019;10:730.\nDodd KC, Nair VA, Prabhakaran V. Role of the Contralesional vs. Ipsilesional hemisphere in stroke recovery. Front Hum Neurosci. 2017;11:1.\nSunnerhagen KS, Olver J, Francisco GE. Assessing and treating functional impairment in poststroke spasticity. Neurology. 2013;80(3 Suppl 2):S35–44.\nNaro A, Leo A, Russo M, Casella C, Buda A, Crespantini A, et al. Breakthroughs in the spasticity management: are non-pharmacological treatments the future? J Clin Neurosci. 2017;39:16–27.\nBolognini N, Russo C, Edwards DJ. The sensory side of post-stroke motor rehabilitation. Restor Neurol Neurosci. 2016;34(4):571–86.",{"VOID":1267},"10.1186\u002Fs12984-020-00740-z","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-020-00740-z",[1270,1285,1298,1311],{"id":1271,"sortIndex":32,"researcher":28,"roles":1272,"affiliations":1273,"properties":1282,"displayName":1284,"givenName":28,"familyName":28},"59513296-654d-4568-867c-239e5377c9d1",[974],[1274],{"id":1275,"sortIndex":32,"affiliation":1276,"properties":28},"fee04868-6de9-4625-8af4-823af7c95c0f",{"id":1275,"createTime":28,"updateTime":28,"relativeEntities":1277,"slug":28,"properties":1278,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1281,"statistic":28},[],{"title":1279},{"VI":1280},"Karolinska Institutet, Department of Clinical Sciences, Danderyd Hospital, Division of Rehabilitation Medicine, Stockholm, Sweden",[],{"title":1283},{"VI":1284},"Susanne 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objective of this study is to highlight the effect of a robotic driver assistance module of powered wheelchair (PWC), using infrared sensors and accessorizing a commercial wheelchair) on the reduction of the number of collisions in standardized circuit in a population with neurological disorders by comparing driving performance with and without assistance. This is a prospective, single-center, controlled, repeated measure design, single-blind pilot study including patients with neurological disabilities who are usual drivers of electric wheelchairs. The main criterion for evaluating the device is the number of collisions with and without the assistance of a prototype anti-collision system on three circuits of increasing complexity. Travel times, cognitive load, driving performance, and user satisfaction are also analyzed. 23 Patients, 11 women and 12 men with a mean age of 48 years old completed the study. There was a statistically significant reduction in the number of collisions on the most complex circuit: 61% experienced collisions without assistance versus 39% with assistance (p = 0.038). This study concludes that the PWC driving assistance module is efficient in terms of safety without reducing the speed of movement in a population of people with disabilities who are habitual wheelchair drivers. The prospects are therefore to conduct tests on a target population with driving failure or difficulty who could benefit from this device so as to allow them to travel independently and safely.",{"EN":1387},"SWADAPT1: assessment of an electric wheelchair-driving robotic module in standardized circuits: a prospective, controlled repeated measure design pilot study",{"VOID":1389},"Kirby RL, Smith C, Parker K, et al. the Wheelchair skills program (WSP) manual v.4.3, 2016. https:\u002F\u002Fwww.wheelchairskillsprogram.ca\u002Fwp-content\u002Fuploads\u002F2018\u002F04\u002FThe_Wheelchair_Skills_Program_Manual.1.pdf.\nVignier N, Ravaud JF, Winance M, et al. Demographics of wheelchair users in France: results of national community-based handicaps-incapacites-dependance surveys. J Rehabil Med. 2008;40(3):231–9.\nKaye HS, Kang T, Laplante MP. Wheelchair use in the United States. In: Mobility Device Use in the United States. Disability Stat Rep. 2002;1–4.\nKirby RL, Ackroyd-Stolarz SA. Wheelchair safety–adverse reports to the United States Food and Drug Administration. Am J Phys Med Rehabil. 1995;74(4):308–12.\nXiang H, Chany AM, Smith GA. Wheelchair related injuries treated in US emergency departments. Inj Prev. 2006;12(1):8–11.\nChen WY, Jang Y, Wang JD, et al. Wheelchair-related accidents: relationship with wheelchair-using behavior in active community wheelchair users. Arch Phys Med Rehabil. 2011;92(6):892–8.\nUmmat S, Kirby RL. Nonfatal wheelchair-related accidents reported to the national electronic injury surveillance system. Am J Phys Med Rehabil. 1994;73(3):63–167.\nKim DJ, Lee HJ, Yang YA. The status of accidents and management for electronic assistive devices among the handicapped. Korean J Health Serv Manag. 2016;10(3):223–34.\nCooper RA, Thorman T, Cooper R, et al. Driving characteristics of electric-powered wheelchair users: how far, fast, and often do people drive? Arch Phys Med Rehabil. 2002;83(2):250–5.\nFehr L, Langbein WE, Skaar SB. Adequacy of power wheelchair control interfaces for persons with severe disabilities: a clinical survey. J Rehabil Res Dev. 2000;37(3):353.\nRushton PW, Kairy D, Archambault P, et al. The potential impact of intelligent power wheelchair use on social participation: perspectives of users, caregivers and clinicians. Disabil Rehabil Assist Technol. 2014;10(3):191–7.\nKirby RL, Miller WC, Routhier F, et al. Effectiveness of a wheelchair skills training program for powered wheelchair users: a randomized controlled trial. Arch Phys Med Rehabil. 2015;96(11):2017-2026 e3.\nGallien P, Nicolas B, Durufle A, et al. Quality of life of adults with cerebral palsy living in Britanny. Ann Phys Rehabil Med. 2015;58:e131–2.\nHelal A, Mokhtari M, Abdulrazak B. The engineering handbook of smart technology for aging, disability and independence. New Jersey: Wiley; 2008.\nEdwards K, Mccluskey A. A survey of adult power wheelchair and scooter users. Disabil Rehabil Assist Technol. 2010;5(6):411–9.\nDel Carmen MM. World report on disability. J Policy Pract Intellect Disabil. 2011;8(4):290–290.\nMortenson WB, Miller WC, Backman CL, et al. Association between mobility, participation, and wheelchair-related factors in long-term care residents who use wheelchairs as their primary means of mobility. J Am Geriatr Soc. 2012;60(7):1310–5.\nLevine SP, Bell DA, Jaros LA, et al. The NavChair assistive wheelchair navigation system. IEEE Trans Rehabil Eng. 1999;7(4):443–51.\nDemeester E, Vander Poorten E, Hüntemann A, et al. Wheelchair navigation assistance in the fp7 project radhar: objectives and current state. IROS Workshop on Progress, Challenges and Future Perspectives in Navigation and Manipulation Assistance for Robotic Wheelchairs, 2012.\nKokosy A, Floquet T, Howells G, et al. SYSIASS, an intelligent powered wheelchair. In: International Conference on Systems and Computer Science, 2012.\nRagot N, Caron G, Sakel M, et al. Coalas: A eu multidisciplinary research project for assistive robotics neuro-rehabilitation. In: IEEE\u002FRSJ IROS workshop on rehabilitation and assistive robotics: bridging the gap between clinicians and roboticists, Chicago, USA. 2014.\nSimpson RC. Smart wheelchairs: a literature review. J Rehabil Res Dev. 2005;42(4):423.\nSimpson R, Lopresti E, Hayashi S, Guo S, Ding D, Ammer W, Sharma V, Cooper R. A prototype power assist wheelchair that provides for obstacle detection and avoidance for those with visual impairments. J Neuroeng Rehabil. 2005;2:30.\nBoucher P, Atrash A, Kelouwani S, et al. Design and validation of an intelligent wheelchair towards a clinically-functional outcome. J Neuroeng Rehabil. 2013;10(1):58.\nDawson DR, Kaiserman-Goldenstein E, Chan R, et al. Power-mobility indoor driving assessment manual (PIDA). Toronto (Canada): Department of Occupational Therapy, Sunnybrook and Women’s College Health Sciences Centre; 2006.\nADAPT (Assistive Devices for empowering disAbled People through robotic Technologie). Official website: http:\u002F\u002Fadapt-project.com\u002Findex-en.php. 2017.\nEddy MB. Let’s open cities for us—LOCUS. Barcelona: Universitat Politecnica de Catalunya; 2013.\nEddy MB, Soler SG, Wagner CV, Liebergesell NP. Four wheelchair-user architects. Barcelona: Ajuntament de Barcelona; 2017.\nLetts L, Dawson D, Bretholz I, et al. Reliability and validity of the power-mobility community driving assessment. Assist Technol. 2007;19(3):154–63.\nDevigne L, Narayanan V K, Pasteau F, et al. Low complex sensor-based shared control for power wheelchair navigation. In: Intelligent Robots and Systems (IROS), 2016 IEEE\u002FRSJ international conference on. IEEE, 2016. p. 5434–5439.\nDevigne L, Pasteau F, Le Borgne N, Babel M, Carlson T, Gallien P. Assisting power wheelchair driving on a sidewalk: a proof of concept. Modell Meas Control C. 2018;79(4):185–9.\nHart SG. NASA-task load index (NASA-TLX); 20 years later. In: Proceedings of the human factors and ergonomics society annual meeting. Los Angeles, CA: Sage Publications, 2006. p. 904–908.\nLund AM. Measuring usability with the USE questionnaire. STC Usability SIG Newslett. 2001;8:2.\nTomczak M, Tomczak E. The need to report effect size estimates revisited. An overview of some recommended measures of effect size. Trends Sport Sci. 2014;1(21):19–25.\nKassambara A. Wilcoxon effect size rstatix. 2020. https:\u002F\u002Frpkgs.datanovia.com\u002Frstatix\u002Freference\u002Fwilcox_effsize.html. Accessed 9 Aug 2021.\nMcgarry S, Moir L, Girdler S. The smart wheelchair: is it an appropriate mobility training tool for children with physical disabilities? Disabil Rehabil Assist Technol. 2012;7(5):372–80. https:\u002F\u002Fdoi.org\u002F10.3109\u002F17483107.2011.637283 (Epub 2011 Nov 29).\nSharma V, Simpson R, Lopresti E, et al. Evaluation of semiautonomous navigation assistance system for power wheelchairs with blindfolded nondisabled individuals. J Rehabil Res Dev. 2010;47(9):877–90.\nSharma V, Simpson R, Lopresti E, Schmeler M. Clinical evaluation of semiautonomous smart wheelchair architecture (Drive-Safe System) with visually impaired individuals. J Rehabil Res Dev. 2012;49(1):35–50.\nHow TV, Wang RH, Mihailidis A. Evaluation of an intelligent wheelchair system for older adults with cognitive impairments. J Neuroeng Rehabil. 2013;10(1):90.\nHow TV, Wang RH, Mihailidis A. Evaluation of an intelligent wheelchair system for older adults with cognitive impairments. J Neuroeng Rehabil. 2013;7(10):90. https:\u002F\u002Fdoi.org\u002F10.1186\u002F1743-0003-10-90.\nLopresti EF, Sharma V, Simpson RC, et al. Performance testing of collision-avoidance system for power wheelchairs. J Rehabil Res Dev. 2011;48(5):529.\nSorrento GU, Archambault PS, Routhier F, et al. Assessment of Joystick control during the performance of powered wheelchair driving tasks. J Neuroeng Rehabil. 2011;8(1):31.\nYousefi B, Huo X, Kim J, et al. Quantitative and comparative assessment of learning in a tongue-operated computer input device–-part II: navigation tasks. IEEE Trans Inf Technol Biomed. 2012;16(4):633–43.\nPearlman J, Cooper R, Chhabra HS, et al. Design, development and testing of a low-cost electric powered wheelchair for India. Disabil Rehabil Assist Technol. 2009;4(1):42–57.\nDemers L, Weiss-Lambrou R, Ska B. The Quebec user evaluation of satisfaction with assistive technology (QUEST 2.0): an overview and recent progress. Technol Disabil. 2002;14(3):101–5.\nMountain AD, Kirby RL, Smith C. The wheelchair skills test, version 2.4: validity of an algorithm-based questionnaire version 1. 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Gallien",{"url":1392,"publisher":1499,"properties":1544},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1500,"slug":872,"properties":1501,"entityType":25,"verifyStatus":880,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1504,"manageAffiliations":1513,"indexDatabases":1524,"url":28,"thumbnailPath":28,"statistic":1539,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1502,"title":1503},{"VOID":875},{"EN":877},[1505,1509],{"id":883,"createTime":28,"updateTime":28,"relativeEntities":1506,"label":1507,"description":1508,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":886},{},{"id":889,"createTime":28,"updateTime":28,"relativeEntities":1510,"label":1511,"description":1512,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":892},{},[1514,1519],{"id":896,"createTime":28,"updateTime":28,"relativeEntities":1515,"slug":28,"properties":1516,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1518,"statistic":28},[],{"title":1517},{"EN":900},[],{"id":903,"createTime":28,"updateTime":28,"relativeEntities":1520,"slug":28,"properties":1521,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1523,"statistic":28},[],{"title":1522},{"EN":907},[],[1525,1532],{"id":911,"indexDatabase":1526,"url":923,"indexYears":28,"academicFieldIds":1531,"indexDatabaseRanking":28},{"id":913,"createTime":28,"updateTime":28,"relativeEntities":1527,"label":1528,"description":1529,"key":920,"publicationTags":1530,"standard":28},[],{"EN":916,"VI":916},{"EN":918,"VI":919},[922,813],[925,926,927],{"id":929,"indexDatabase":1533,"url":935,"indexYears":936,"academicFieldIds":1538,"indexDatabaseRanking":940},{"id":786,"createTime":28,"updateTime":28,"relativeEntities":1534,"label":1535,"description":1536,"key":792,"publicationTags":1537,"standard":28},[],{"EN":789,"VI":789},{"EN":789,"VI":791},[794],[938,939],{"impactFactor":32,"impactFactorByYear":1540,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":943,"totalPublicationByYear":1541,"totalCitation":46,"totalCitationByYear":1542,"totalCitationPerPublication":32,"totalCitationPerPublicationByYear":1543,"hindexLast5Year":40,"hindex":40},{"2023":317},{"2004":145,"2005":128,"2006":199,"2007":132,"2008":199,"2009":142,"2010":132,"2011":142,"2012":141,"2013":151,"2014":600,"2015":159,"2016":281,"2017":688,"2018":159,"2019":945,"2020":358,"2021":451,"2022":829,"2023":155,"2024":136},{"2022":46},{"2022":112},{"pages":1545,"volume":1547},{"VOID":1546},"1-12",{"VOID":1548},"18","2021-09-16",2021,[922,940],{"id":1553,"createTime":1554,"updateTime":1555,"relativeEntities":1556,"slug":1557,"properties":1558,"entityType":967,"verifyStatus":26,"verifyTime":1555,"verifyNote":968,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1567,"fullTextUrl":28,"authors":1568,"publicationType":1060,"publisherRelationship":1633,"citationCount":28,"citationInfo":28,"publishDate":1684,"publishYear":1685,"citationAnalyzeStatus":880,"lastCitationAnalyze":28,"indexDatabases":1686,"openAccess":28,"references":28,"isForceReanalyzing":1115},"00dad9ce-6abc-4628-8831-c1366bce056e","2024-02-14T00:03:07.919+00:00","2024-12-13T19:05:42.530+00:00",[],"Quantification-of-the-effects-of-an-alpha-2-adrenergic-agonist-on-reflex-properties-in-spinal-cord-injury-using-a-system-identification-technique",{"abstract":1559,"title":1561,"references":1563,"doi":1565},{"EN":1560},"Despite numerous investigations, the impact of tizanidine, an anti-spastic medication, on changes in reflex and muscle mechanical properties in spasticity remains unclear. This study was designed to help us understand the mechanisms of action of tizanidine on spasticity in spinal cord injured subjects with incomplete injury, by quantifying the effects of a single dose of tizanidine on ankle muscle intrinsic and reflex components. A series of perturbations was applied to the spastic ankle joint of twenty-one spinal cord injured subjects, and the resulting torques were recorded. A parallel-cascade system identification method was used to separate intrinsic and reflex torques, and to identify the contribution of these components to dynamic ankle stiffness at different ankle positions, while subjects remained relaxed. Following administration of a single oral dose of Tizanidine, stretch evoked joint torque at the ankle decreased significantly (p \u003C 0.001) The peak-torque was reduced between 15% and 60% among the spinal cord injured subjects, and the average reduction was 25%. Using systems identification techniques, we found that this reduced torque could be attributed largely to a reduced reflex response, without measurable change in the muscle contribution. Reflex stiffness decreased significantly across a range of joint angles (p \u003C 0.001) after using tizanidine. In contrast, there were no significant changes in intrinsic muscle stiffness after the administration of tizanidine. Our findings demonstrate that tizanidine acts to reduce reflex mechanical responses substantially, without inducing comparable changes in intrinsic muscle properties in individuals with spinal cord injury. Thus, the pre-post difference in joint mechanical properties can be attributed to reflex changes alone. From a practical standpoint, use of a single \"test\" dose of Tizanidine may help clinicians decide whether the drug can helpful in controlling symptoms in particular subjects.",{"EN":1562},"Quantification of the effects of an alpha-2 adrenergic agonist on reflex properties in spinal cord injury using a system identification technique",{"VOID":1564},"DeVivo MJ, Stover SL: Long-term survival and causes of death. In Spinal Cord Injury: Clinical Outcomes from the Model Systems. Edited by: Stover SL, DeLisa JA, Whiteneck GG. Aspen: Gaithersburg; 1995.\nDeVivo MJ, Whiteneck GG, Charles ED: The economic impact of spinal cord injury. In Spinal Cord Injury: Clinical Outcomes from the Model Systems. Edited by: Stover SL, DeLisa JA, Whiteneck GG. Aspen: Gaithersburg; 1995.\nLevi AD, Tator CH, Bunge RP: Clinical syndromes associated with disproportionate weakness of the upper versus the lower extremities after cervical spinal cord injury. Neurosurgery 1996, 38: 79-83. 10.1097\u002F00006123-199601000-00039\nLance J, McLeod J: Disordered muscle tone. In Physiological Approach to Clinical Neurology. Boston: Butterworths; 1981.\nKatz RT, Rymer WZ: Spastic hypertonia: Mechanisms and measurement. Arch Phys Med Rehabil 1989, 70: 144-155.\nBass B, Weinshenker B, Rice GP, Noseworthy JH, Cameron MG, Hader W, Bouchard S, Ebers GC: Tizanidine vs baclofen in the treatment of spasticity in patients with multiple sclerosis. Can J Neurol Sci 1988, 15: 15-19.\nBeard S, Hunn A, Wight J: Treatments for spasticity and pain multiple sclerosis: a systematic review. Health Technol Asses 2003,7(40):1-111. iii, ix, x\nChou R, Peterson K, Helfand M: Comparative efficacy and saftey of skeletal muscle relaxants for spasticity and musculoskeletal conditions: a systematic review. J Pain Symptom Manag 2004,28(2):140-147. 10.1016\u002Fj.jpainsymman.2004.05.002\nDones I, Nazzi V, Broggi G: The guidelines for the diagnosis and treatment of spasticity. J Neruosurg Sci 2006,50(4):101-105.\nGracies JM, Nance P, Elovic E, McGuire J, Simpson DM: Traditional pharmacological treatments for spsticity. Part II: General and regional treatments. Muscle Nerve Suppl 1997, 6: S92-120. 10.1002\u002F(SICI)1097-4598(1997)6+\u003C92::AID-MUS7>3.0.CO;2-E\nHoogstraten MC, van der Ploeg RJ, vd Burg W, Vreeling A, van Marle S, Minderhoud JM: Tizanidine vs baclofen in the treatment of spasticity in multiple sclerosis patients. Acta Neurol Scand 1988, 77: 224-230. 10.1111\u002Fj.1600-0404.1988.tb05899.x\nMontane E, Vallano A, Laporte JR: Oral antispastic drugs in nonprogressive neurologic diseases: a systematic review. Neurology 2004,63(8):1357-1363.\nWagstaff AJ, Bryson HM: Tizanidine. A review of its pharmacology, clinical efficacy and tolerability in the management of spasticity associated with cerebral and spinal disorders. Drugs 1997,53(3):435-452. 10.2165\u002F00003495-199753030-00007\nJankowska E, Lackberg ZS, Dyrehag LE: Effects of monoamines on transmission from group II muscle afferents in sacral segments in the cat. Eur J Neurosci 1994,6(6):1058-1061. 10.1111\u002Fj.1460-9568.1994.tb00601.x\nAnonymous: A double-blind, placebo-controlled trial of tizanidine in the treatment of spasticity caused by multiple sclerosis. Neurol 1994,44(suppl 9):S70-S78.\nSmith HS, Barton AE: Tizanidine in the management of spasticity and musculoskeletal complaints in the palliative care population. J Hospice Palliative Care 2000,17(1):50-58. 10.1177\u002F104990910001700111\nWallace JD: Summary of combined clinical analysis of contolled clinical trials with tizanidine. Neurol 1994,44(suppl 9):S60-S69.\nSmolenski C, Muff S, Smolenski-Kautz S: A double-blind comparative trial of a new muscle relaxant, tizanidine (DS 103-282), and baclofen in the treatment of chronic spasticity in multiple sclerosis. Curr Med Res Opin 1981, 7: 374-383.\nCoward DM: Neuropharmacology and mechanism of action. Neurol 1994,44(suppl 9):S6-S11.\nChau C, Barbeau H, Rossignol S: Effects of intrathecal alpha1- and alpha2-noradrenergic agonists and norepinephrine on locomotion in chronic spinal cats. Journal of Neurophysiology 1998,79(6):2941-2963.\nDelwaide P: Electrophysiological analysis of mode of action of muscle relaxants in spasticity. Ann Neurol 1985, 17: 90-95. 10.1002\u002Fana.410170119\nPierrot-Deseilligny E, Bergego E, Katz R, Morin C: Cutaneous depression of Ib reflex pathways to motoneurons in man. Exp Brain Res 1981, 42: 351-361.\nUnnerstall JR, Kopajtic TA, Kuhar MJ: Distribution of alpha2 agonist binding sites in the rat and human central nervous system: analysis of some functional, anatomic correlates of the pharmacologic effects of clonidine and related adrenergic agents. Brain Res 1984, 319: 69-101.\nNance PW, Bugaresti J, Shellenberger K, Sheremata W, Martinez-Arizala A, Group NATS: Efficacy and safety of tizanidine in the treatment of spasticity in patients with spinal cord injury. Neurol 1994,44(suppl 9):S44-S52.\nEmre M: Review of clinical trials with tizanidine (Sirdalud). In Spasticity: the current status of reserach and treatment. Edited by: Emre M, Benecke R. Lancashire, UK: Parthenon; 1989:153-184.\nKnutsson E, Martensson A, Gronsberg L: Antiparetic and antispastic effects induced by tizanidne in pateints with spastic paresis. J Neuro Sci 1982, 53: 187-204. 10.1016\u002F0022-510X(82)90005-3\nLataste X, Emre M, Davis C, Groves L: Comparative profile of tizanidine in the management of spastictiy. Neurol 1994,44(suppl 9):S53-S59.\nMathias CJ, Luckitt J, Desai P, Baker H, el Masri W, Frankel HL: Pharmacodynamics and pharmacokinetics of the oral antispastic agent tizanidine in patients with spinal cord injury. J Rehabil Res Dev 1989, 26: 9-16.\nMirbagheri MM, Alibiglou L, Thajchayapong M, Rymer WZ: Muscle and reflex changes with varying joint angle in hemiparetic stroke. J Neuroeng Rehabil 2008,27(5):1-15.\nMirbagheri MM, Ladouceur M, Barbeau H, Kearney RE: Intrinsic and reflex stiffness in normal and spastic spinal cord injured subjects. Exp Brain Res 2001, 141: 446-459. 10.1007\u002Fs00221-001-0901-z\nMirbagheri MM, Settle K, Harvey R, Rymer WZ: Neuromuscular abnormalities associated with spasticity of upper extremity muscles in hemiparetic stroke. J Neurophysiol 2007,98(2):629-637. 10.1152\u002Fjn.00049.2007\nMirbagheri MM, Barbeau H, Kearney RE: Intrinsic and reflex contributions to human ankle stiffness: Variation with activation level and position. Exp Brain Res 2000, 135: 423-436. 10.1007\u002Fs002210000534\nAshworth B: Preliminary trial of carisoprodol in multiple sclerosis. Practitioner 1964, 192: 540-542.\nBohannon RW, Smith MB: Inter-rater reliability on a modified Ashworth scale of muscle spasticity. Phys Ther 1987, 67: 206-207.\nKearney RE, Stein RB, Parameswaran L: Identification of intrinsic and reflex contributions to human ankle stiffness dynamics. IEEE Trans Biomed Eng 1997, 44: 493-504. 10.1109\u002F10.581944\nLourenco G, Lglesias C, Cavallari P, Pierrot-Deseilligny E, Marchand-Pauvert V: Mediation of late excitation from human hand muscles via parallel group II spinal and group I transcortical pathways. J Phys 2006,572(Pt 2):585-603.\nMazzaro N, Grey MJ, do Nascimento OF, Sinkjaer T: Afferent-mediated modulation of the soleus muscle activity during the stance phase of human walking. Exp Brain Res 2006,173(4):713-723. 10.1007\u002Fs00221-006-0451-5\nAlibiglou L, Rymer WZ, Harvey RL, Mirbagheri MM: The relation between Ashworth scores and neuromechanical measurements of spasticity following stroke. J Neuroeng Rehabil 2008,5(18):1-14.\nKearney RE, Hunter IW: System identification of human joint dynamics. Crit Rev Biomed Eng 1990,18(1):55-87.\nMirbagheri MM, Ladouceur M, Barbearu H, E KR: The effects of long-term FES-assisted walking on intrinsic and reflex dynamic stiffness in spastic SCI subjects. IEEE Trans Neural System Rehabil Eng 2002,10(4):280-289. 10.1109\u002FTNSRE.2002.806838\nCoward DM: Pharmacology and mechanisms of action of tizanidine (Sirdalud). In Spasticity: the current status of reserach and treatment New trends in clinical neruology series. Edited by: Emre M, Benecke R. Lancashire, UK: Parthenon; 1989:131-140.",{"VOID":1566},"10.1186\u002F1743-0003-7-29","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002F1743-0003-7-29",[1569,1593,1613],{"id":1570,"sortIndex":32,"researcher":28,"roles":1571,"affiliations":1572,"properties":1590,"displayName":1592,"givenName":28,"familyName":28},"8c1c46db-779c-499a-8c13-18aaac2e9a9f",[974],[1573,1581],{"id":1574,"sortIndex":32,"affiliation":1575,"properties":28},"00df0ac3-3cbf-4b99-bdd5-86993e17bb67",{"id":1574,"createTime":28,"updateTime":28,"relativeEntities":1576,"slug":28,"properties":1577,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1580,"statistic":28},[],{"title":1578},{"VI":1579},"Department of Physical Medicine and Rehabilitation, Northwestern University, Chicago, USA",[],{"id":1582,"sortIndex":40,"affiliation":1583,"properties":1589},"99d7e2a4-ed6d-472f-b1a4-eb7b32576a86",{"id":1582,"createTime":28,"updateTime":28,"relativeEntities":1584,"slug":28,"properties":1585,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1588,"statistic":28},[],{"title":1586},{"VI":1587},"Sensory Motor Performance Program, Rehabilitation Institute of Chicago, Chicago, USA",[],{},{"title":1591},{"VI":1592},"Mehdi M Mirbagheri",{"id":1594,"sortIndex":40,"researcher":28,"roles":1595,"affiliations":1596,"properties":1610,"displayName":1612,"givenName":28,"familyName":28},"56ead6a3-475a-44ca-ba8f-47b0ad6cda60",[974],[1597,1603],{"id":1574,"sortIndex":32,"affiliation":1598,"properties":28},{"id":1574,"createTime":28,"updateTime":28,"relativeEntities":1599,"slug":28,"properties":1600,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1602,"statistic":28},[],{"title":1601},{"VI":1579},[],{"id":1582,"sortIndex":40,"affiliation":1604,"properties":1609},{"id":1582,"createTime":28,"updateTime":28,"relativeEntities":1605,"slug":28,"properties":1606,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1608,"statistic":28},[],{"title":1607},{"VI":1587},[],{},{"title":1611},{"VI":1612},"David Chen",{"id":1614,"sortIndex":123,"researcher":28,"roles":1615,"affiliations":1616,"properties":1630,"displayName":1632,"givenName":28,"familyName":28},"4e2533ee-5147-4378-820a-ffefb62651d2",[974],[1617,1623],{"id":1574,"sortIndex":32,"affiliation":1618,"properties":28},{"id":1574,"createTime":28,"updateTime":28,"relativeEntities":1619,"slug":28,"properties":1620,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1622,"statistic":28},[],{"title":1621},{"VI":1579},[],{"id":1582,"sortIndex":40,"affiliation":1624,"properties":1629},{"id":1582,"createTime":28,"updateTime":28,"relativeEntities":1625,"slug":28,"properties":1626,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1628,"statistic":28},[],{"title":1627},{"VI":1587},[],{},{"title":1631},{"VI":1632},"WZev Rymer",{"url":1567,"publisher":1634,"properties":1679},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1635,"slug":872,"properties":1636,"entityType":25,"verifyStatus":880,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1639,"manageAffiliations":1648,"indexDatabases":1659,"url":28,"thumbnailPath":28,"statistic":1674,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1637,"title":1638},{"VOID":875},{"EN":877},[1640,1644],{"id":883,"createTime":28,"updateTime":28,"relativeEntities":1641,"label":1642,"description":1643,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":886},{},{"id":889,"createTime":28,"updateTime":28,"relativeEntities":1645,"label":1646,"description":1647,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":892},{},[1649,1654],{"id":896,"createTime":28,"updateTime":28,"relativeEntities":1650,"slug":28,"properties":1651,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1653,"statistic":28},[],{"title":1652},{"EN":900},[],{"id":903,"createTime":28,"updateTime":28,"relativeEntities":1655,"slug":28,"properties":1656,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1658,"statistic":28},[],{"title":1657},{"EN":907},[],[1660,1667],{"id":911,"indexDatabase":1661,"url":923,"indexYears":28,"academicFieldIds":1666,"indexDatabaseRanking":28},{"id":913,"createTime":28,"updateTime":28,"relativeEntities":1662,"label":1663,"description":1664,"key":920,"publicationTags":1665,"standard":28},[],{"EN":916,"VI":916},{"EN":918,"VI":919},[922,813],[925,926,927],{"id":929,"indexDatabase":1668,"url":935,"indexYears":936,"academicFieldIds":1673,"indexDatabaseRanking":940},{"id":786,"createTime":28,"updateTime":28,"relativeEntities":1669,"label":1670,"description":1671,"key":792,"publicationTags":1672,"standard":28},[],{"EN":789,"VI":789},{"EN":789,"VI":791},[794],[938,939],{"impactFactor":32,"impactFactorByYear":1675,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":943,"totalPublicationByYear":1676,"totalCitation":46,"totalCitationByYear":1677,"totalCitationPerPublication":32,"totalCitationPerPublicationByYear":1678,"hindexLast5Year":40,"hindex":40},{"2023":317},{"2004":145,"2005":128,"2006":199,"2007":132,"2008":199,"2009":142,"2010":132,"2011":142,"2012":141,"2013":151,"2014":600,"2015":159,"2016":281,"2017":688,"2018":159,"2019":945,"2020":358,"2021":451,"2022":829,"2023":155,"2024":136},{"2022":46},{"2022":112},{"pages":1680,"volume":1682},{"VOID":1681},"1-7",{"VOID":1683},"7","2010-06-23",2010,[922,940],{"id":1688,"createTime":1689,"updateTime":1689,"relativeEntities":1690,"slug":28,"properties":1691,"entityType":967,"verifyStatus":880,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1700,"fullTextUrl":28,"authors":1701,"publicationType":1060,"publisherRelationship":1805,"citationCount":28,"citationInfo":28,"publishDate":1855,"publishYear":1113,"citationAnalyzeStatus":880,"lastCitationAnalyze":28,"indexDatabases":1856,"openAccess":28,"references":28,"isForceReanalyzing":1115},"012b77da-cb35-4345-bd75-2d8705540303","2024-02-13T12:24:54.993+00:00",[],{"abstract":1692,"title":1694,"references":1696,"doi":1698},{"EN":1693},"A prosthetic system should ideally reinstate the bidirectional communication between the user’s brain and its end effector by restoring both motor and sensory functions lost after an amputation. However, current commercial prostheses generally do not incorporate somatosensory feedback. Even without explicit feedback, grasping using a prosthesis partly relies on sensory information. Indeed, the prosthesis operation is characterized by visual and sound cues that could be exploited by the user to estimate the prosthesis state. However, the quality of this incidental feedback has not been objectively evaluated. In this study, the psychometric properties of the auditory and visual feedback of prosthesis motion were assessed and compared to that of a vibro-tactile interface. Twelve able-bodied subjects passively observed prosthesis closing and grasping an object, and they were asked to discriminate (experiment I) or estimate (experiment II) the closing velocity of the prosthesis using visual (VIS), acoustic (SND), or combined (VIS + SND) feedback. In experiment II, the subjects performed the task also with a vibrotactile stimulus (VIB) delivered using a single tactor. The outcome measures for the discrimination and estimation experiments were just noticeable difference (JND) and median absolute estimation error (MAE), respectively. The results demonstrated that the incidental sources provided a remarkably good discrimination and estimation of the closing velocity, significantly outperforming the vibrotactile feedback. Using incidental sources, the subjects could discriminate almost the minimum possible increment\u002Fdecrement in velocity that could be commanded to the prosthesis (median JND \u003C 2% for SND and VIS + SND). Similarly, the median MAE in estimating the prosthesis velocity randomly commanded from the full working range was also low, i.e., approximately 5% in SND and VIS + SND. Since the closing velocity is proportional to grasping force in state-of-the-art myoelectric prostheses, the results of the present study imply that the incidental feedback, when available, could be usefully exploited for grasping force control. Therefore, the impact of incidental feedback needs to be considered when designing a feedback interface in prosthetics, especially since the quality of estimation using supplemental sources (e.g., vibration) can be worse compared to that of the intrinsic cues.",{"EN":1695},"Psychometric characterization of incidental feedback sources during grasping with a hand prosthesis",{"VOID":1697},"Johansson RS. How Is Grasping Modified by Somatosensory Input? In: Motor Control: Concepts and Issues; 1991. p. 331–55.\nNowak DA, Glasauer S, Hermsdörfer J. How predictive is grip force control in the complete absence of somatosensory feedback? Brain. 2004;127(1):182–92.\nRothwell JC, Traub MM, Day BL, Obeso JA, Thomas PK, Marsden CD. Manual motor performance in a deafferented man. Brain. 1982;105(3):515–42.\nParker P, Englehart K, Hudgins B. Myoelectric signal processing for control of powered limb prostheses. J Electromyogr Kinesiol. 2006;16(6):541–8.\nVujaklija I, Farina D, Aszmann OC. New developments in prosthetic arm systems. Orthop Res Rev. 2016;8(July):31–9.\nScott RN, Parker PA. Myoelectric prostheses: state of the art. J Med Eng Technol. 1988;12(4):143–51.\nPeerdeman B, Boere D, Witteveen H, Hermens H, Stramigioli S, et al. Myoelectric forearm prostheses: state of the art from a user-centered perspective. J Rehabil Res Dev. 2011;48(6):719–37.\nChildress DS. Closed-loop control in prosthetic systems: historical perspective. Ann Biomed Eng. 1980;8(4–6):293–303.\nHebert JS, Olson JL, Morhart MJ, Dawson MR, Marasco PD, Kuiken TA, et al. Novel targeted sensory Reinnervation technique to restore functional hand sensation after Transhumeral amputation. IEEE Trans Neural Syst Rehabil Eng. 2014;22(4):765–73.\nSchofield JS, Evans KR, Carey JP, Hebert JS. Applications of sensory feedback in motorized upper extremity prosthesis: a review. Expert Rev Med Dev. 2014;13(5):1–13.\nSvensson P, Wijk U, Björkman A, Antfolk C. A review of invasive and non-invasive sensory feedback in upper limb prostheses. Expert Rev Med Dev. 2017;14(6):439–47.\nStephens-Fripp B, Alici G, Mutlu R. A review of non-invasive sensory feedback methods for transradial prosthetic hands. IEEE Access. 2018;6:6878–99.\nChatterjee A, Chaubey P, Martin J, Thakor N. Testing a prosthetic haptic feedback simulator with an interactive force matching task. JPO J Prosthetics Orthot. 2008;20(2):27–34.\nBrown JD, Paek A, Syed M, O’Malley MK, Shewokis PA, Contreras-Vidal JL, et al. An exploration of grip force regulation with a low-impedance myoelectric prosthesis featuring referred haptic feedback. J Neuroeng Rehabil. 2015;12:104.\nBach-y-Rita P, Kercel SW. Sensory substitution and the human-machine interface. Trends Cogn Sci. 2003;7:541–6.\nSzeto AYJ, Saunders FA. Electrocutaneous Stimulation for Sensory Communication in Rehabilitation Engineering. IEEE Trans Biomed Eng. 1982;4:300–8.\nKaczmarek KA, Webster JG, Bach-y-Rita P, Tompkins WJ. Electrotactile and vibrotactile displays for sensory substitution systems. Biomed Eng IEEE Trans. 1991;38(1):1–16.\nWitteveen HJB, Droog EA, Rietman JS, Veltink PH. Vibro- and electrotactile user feedback on hand opening for myoelectric forearm prostheses. IEEE Trans Biomed Eng. 2012;59(8):2219–26.\nSaunders I, Vijayakumar S. The role of feed-forward and feedback processes for closed-loop prosthesis control. J Neuroeng Rehabil. 2011;8(1):60.\nCipriani C, Zaccone F, Micera S, Carrozza MC. On the shared control of an EMG-controlled prosthetic hand: analysis of user-prosthesis interaction. IEEE Trans Robot. 2008;24(1):170–84.\nAntfolk C, D’Alonzo M, Rosén B, Lundborg G, Sebelius F, Cipriani C. Sensory feedback in upper limb prosthetics. Expert Rev Med Dev. 2013;10(1):45–54.\nBattaglia E, Clark JP, Bianchi M, Catalano MG, Bicchi A, O’Malley MK. The Rice Haptic Rocker: skin stretch haptic feedback with the Pisa\u002FIIT SoftHand. In: 2017 IEEE World Haptics Conference (WHC). Munich: IEEE; 2017. p. 7–12.\nRossi M, Bianchi M, Battaglia E, Catalano MG, Bicchi A. HapPro: a wearable haptic device for proprioceptive feedback. IEEE Trans Biomed Eng. 2019;66(1):138–49.\nPatterson PE, Katz JA. Design and evaluation of a sensory feedback system that provides grasping pressure in a myoelectric hand. J Rehabil Res Dev. 1992;29(1):1–8.\nMeek SG, Jacobsen SC, Goulding PP. Extended physiologic taction: design and evaluation of a proportional force feedback system. J Rehabil Res Dev. 1989;26(3):53–62.\nAntfolk C, Balkenius C, Lundborg G, Rosén B, Sebelius F. A tactile display system for hand prostheses to discriminate pressure and individual finger localization. J Med Biol Eng. 2010;30(6):355–60.\nSchoepp KR, Dawson MR, Schofield JS, Carey JP, Hebert JS. Design and integration of an inexpensive wearable mechanotactile feedback system for myoelectric prostheses. IEEE J Transl Eng Heal Med. 2018;6:1–11.\nRaspopovic S, Capogrosso M, Petrini FM, Bonizzato M, Rigosa J, Di Pino G, et al. Restoring Natural Sensory Feedback in Real-Time Bidirectional Hand Prostheses. Sci Transl Med. 2014;6(222):222ra19.\nTan DW, Schiefer MA, Keith MW, Anderson JR, Tyler J, Tyler DJ. A neural interface provides long-term stable natural touch perception. Sci Transl Med. 2014;6(257):257ra138.\nOrtiz-Catalan M, Håkansson B, Brånemark R. An osseointegrated human-machine gateway for long-term sensory feedback and motor control of artificial limbs. Sci Transl Med. 2014;6(257):257re6.\nSchiefer MA, Graczyk EL, Sidik SM, Tan DW, Tyler DJ. Artificial tactile and proprioceptive feedback improves performance and confidence on object identification tasks. PLoS One. 2018;13(12):e0207659.\nClemente F, Valle G, Controzzi M, Strauss I, Iberite F, Stieglitz T, et al. Intraneural sensory feedback restores grip force control and motor coordination while using a prosthetic hand. J Neural Eng. 2019;16(2):026034.\nPage DM, George JA, Kluger DT, Duncan C, Wendelken S, Davis T, et al. Motor control and sensory feedback enhance prosthesis embodiment and reduce phantom pain after long-term hand amputation. Front Hum Neurosci. 2018;12:1-16.\nTabot GA, Dammann JF, Berg JA, Tenore FV, Boback JL, Vogelstein RJ, et al. Restoring the sense of touch with a prosthetic hand through a brain interface. Proc Natl Acad Sci. 2013;110(45):18279–84.\nStepp CE, An Q, Matsuoka Y. Repeated training with augmentative vibrotactile feedback increases object manipulation performance. PLoS One. 2012;7(2):e32743.\nWitteveen HJB, Rietman HS, Veltink PH. Vibrotactile grasping force and hand aperture feedback for myoelectric forearm prosthesis users. Prosthetics Orthot Int. 2015;39(3):204–12.\nWalker J, Blank A, Shewokis P, O’Malley M. Tactile Feedback of Object Slip Facilitates Virtual Object Manipulation. IEEE Trans Haptics. 2015;VV(c):1.\nValle G, Petrini FM, Strauss I, Iberite F, D’Anna E, Granata G, et al. Comparison of linear frequency and amplitude modulation for intraneural sensory feedback in bidirectional hand prostheses. Sci Rep. 2018;8(1):16666.\nClemente F, D’Alonzo M, Controzzi M, Edin BB, Cipriani C. Non-invasive, temporally discrete feedback of object contact and release improves grasp control of closed-loop myoelectric transradial prostheses. IEEE Trans Neural Syst Rehabil Eng. 2016;24(12):1314–22.\nMarkovic M, Schweisfurth MA, Engels LF, Bentz T, Wüstefeld D, Farina D, et al. The clinical relevance of advanced artificial feedback in the control of a multi-functional myoelectric prosthesis. J Neuroeng Rehabil. 2018;15(1):28.\nShehata AW, Engels LF, Controzzi M, Cipriani C, Scheme EJ, Sensinger JW. Improving internal model strength and performance of prosthetic hands using augmented feedback. J Neuroeng Rehabil. 2018;15(1):70.\nValle G, Mazzoni A, Iberite F, D’Anna E, Strauss I, Granata G, et al. Biomimetic Intraneural Sensory Feedback Enhances Sensation Naturalness, Tactile Sensitivity, and Manual Dexterity in a Bidirectional Prosthesis. Neuron. 2018;100(1):37–45.e7.\nAboseria M, Clemente F, Engels LF, Cipriani C. Discrete Vibro-tactile feedback prevents object slippage in hand prostheses more intuitively than other modalities. IEEE Trans Neural Syst Rehabil Eng. 2018;26(8):1577–84.\nSchiefer M, Tan D, Sidek SM, Tyler DJ. Sensory feedback by peripheral nerve stimulation improves task performance in individuals with upper limb loss using a myoelectric prosthesis. J Neural Eng. 2015;13(1):16001.\nRaveh E, Friedman J, Portnoy S. Visuomotor behaviors and performance in a dual-task paradigm with and without vibrotactile feedback when using a myoelectric controlled hand. Assist Technol. 2018;30(5):274–80.\nMarkovic M, Schweisfurth MA, Engels LF, Farina D, Dosen S. Myocontrol is closed-loop control: incidental feedback is sufficient for scaling the prosthesis force in routine grasping. J Neuroeng Rehabil. 2018;15(1):81.\nSchweisfurth MA, Markovic M, Dosen S, Teich F, Graimann B, Farina D. Electrotactile EMG feedback improves the control of prosthesis grasping force. J Neural Eng. 2016 Oct;13(5):056010.\nNinu A, Dosen S, Muceli S, Rattay F, Dietl H, Farina D. Closed-loop control of grasping with a myoelectric hand prosthesis: which are the relevant feedback variables for force control? IEEE Trans Neural Syst Rehabil Eng. 2014;22(5):1041–52.\nDosen S, Markovic M, Hartmann C, Farina D. Sensory feedback in prosthetics: a standardized test bench for closed-loop control. IEEE Trans Neural Syst Rehabil Eng. 2015;23(2):267–76.\nKingdom FAA, Prins N. Psychophysics: a practical introduction. San Diego: Academic; 2010.\nBerniker M, Kording K. Estimating the sources of motor errors for adaptation and generalization. Nat Neurosci. 2011;11:1454–61.\nWolpert DM, UKPMC Funders Group. Probabilistic models in human sensorimotor control. Hum Mov Sci. 2009;26(4):511–24.\nErnst MO, Banks MS. Humans integrate visual and haptic information in a statistically optimal fashion. Nature. 2002;415(6870):429–33.\nPylatiuk C, Kargov A, Schulz S. Design and evaluation of a low-cost force feedback system for myoelectric prosthetic hands. J Prosthet Orthot. 2006;18(2):57–61.\nWitteveen HJB, Luft F, Rietman JS, Veltink PH. Stiffness feedback for myoelectric forearm prostheses using vibrotactile stimulation. IEEE Trans Neural Syst Rehabil Eng. 2014;22(1):53–61.\nMarcus PL, Fuglevand AJ. Perception of electrical and mechanical stimulation of the skin: implications for electrotactile feedback. J Neural Eng. 2009;6(6):066008.\nSchweisfurth MA, Markovic M, Dosen S, Teich F, Graimann B, Farina D. Electrotactile EMG feedback improves the control of prosthesis grasping force. J Neural Eng. 2016;13(5):1–16.\nDosen S, Markovic M, Somer K, Graimann B, Farina D. EMG biofeedback for online predictive control of grasping force in a myoelectric prosthesis. J Neuroeng Rehabil. 2015;12(1):55.",{"VOID":1699},"10.1186\u002Fs12984-019-0622-9","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-019-0622-9",[1702,1726,1748,1761,1783],{"id":1703,"sortIndex":32,"researcher":28,"roles":1704,"affiliations":1705,"properties":1723,"displayName":1725,"givenName":28,"familyName":28},"8dba2f4a-c737-4efd-a146-d27982969925",[974],[1706,1714],{"id":1707,"sortIndex":32,"affiliation":1708,"properties":28},"fbbbfc8c-a023-4ccc-a4d8-43fbea14a5b9",{"id":1707,"createTime":28,"updateTime":28,"relativeEntities":1709,"slug":28,"properties":1710,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1713,"statistic":28},[],{"title":1711},{"VI":1712},"Department of Biotechnology, University for Applied Sciences Hamburg, Hamburg, Germany",[],{"id":1715,"sortIndex":40,"affiliation":1716,"properties":1722},"df646c4d-4c94-4ee2-b047-7b8fd664dd65",{"id":1715,"createTime":28,"updateTime":28,"relativeEntities":1717,"slug":28,"properties":1718,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1721,"statistic":28},[],{"title":1719},{"VI":1720},"Advanced Rehabilitation Technology (ART) Lab, Department for Trauma Surgery, Orthopaedics and Plastic Surgery, Universitätsmedizin Göttingen (UMG), Göttingen, Germany",[],{},{"title":1724},{"VI":1725},"Meike Annika 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London, London, UK",[],{},{"title":1781},{"VI":1782},"Dario Farina",{"id":1784,"sortIndex":45,"researcher":28,"roles":1785,"affiliations":1786,"properties":1802,"displayName":1804,"givenName":28,"familyName":28},"cb47d658-f340-47f3-922d-0668461e2448",[974],[1787,1793],{"id":1715,"sortIndex":32,"affiliation":1788,"properties":28},{"id":1715,"createTime":28,"updateTime":28,"relativeEntities":1789,"slug":28,"properties":1790,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1792,"statistic":28},[],{"title":1791},{"VI":1720},[],{"id":1794,"sortIndex":40,"affiliation":1795,"properties":1801},"dae980f2-d210-48d5-82d1-6e14c92ab390",{"id":1794,"createTime":28,"updateTime":28,"relativeEntities":1796,"slug":28,"properties":1797,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1800,"statistic":28},[],{"title":1798},{"VI":1799},"Department of Health Science and Technology, Center for Sensory-Motor Interaction, Aalborg University, Aalborg, Denmark",[],{},{"title":1803},{"VI":1804},"Strahinja Dosen",{"url":1700,"publisher":1806,"properties":1851},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1807,"slug":872,"properties":1808,"entityType":25,"verifyStatus":880,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1811,"manageAffiliations":1820,"indexDatabases":1831,"url":28,"thumbnailPath":28,"statistic":1846,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1809,"title":1810},{"VOID":875},{"EN":877},[1812,1816],{"id":883,"createTime":28,"updateTime":28,"relativeEntities":1813,"label":1814,"description":1815,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":886},{},{"id":889,"createTime":28,"updateTime":28,"relativeEntities":1817,"label":1818,"description":1819,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":892},{},[1821,1826],{"id":896,"createTime":28,"updateTime":28,"relativeEntities":1822,"slug":28,"properties":1823,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1825,"statistic":28},[],{"title":1824},{"EN":900},[],{"id":903,"createTime":28,"updateTime":28,"relativeEntities":1827,"slug":28,"properties":1828,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1830,"statistic":28},[],{"title":1829},{"EN":907},[],[1832,1839],{"id":911,"indexDatabase":1833,"url":923,"indexYears":28,"academicFieldIds":1838,"indexDatabaseRanking":28},{"id":913,"createTime":28,"updateTime":28,"relativeEntities":1834,"label":1835,"description":1836,"key":920,"publicationTags":1837,"standard":28},[],{"EN":916,"VI":916},{"EN":918,"VI":919},[922,813],[925,926,927],{"id":929,"indexDatabase":1840,"url":935,"indexYears":936,"academicFieldIds":1845,"indexDatabaseRanking":940},{"id":786,"createTime":28,"updateTime":28,"relativeEntities":1841,"label":1842,"description":1843,"key":792,"publicationTags":1844,"standard":28},[],{"EN":789,"VI":789},{"EN":789,"VI":791},[794],[938,939],{"impactFactor":32,"impactFactorByYear":1847,"i10Index":32,"i10IndexLast5Year":32,"totalPublication":943,"totalPublicationByYear":1848,"totalCitation":46,"totalCitationByYear":1849,"totalCitationPerPublication":32,"totalCitationPerPublicationByYear":1850,"hindexLast5Year":40,"hindex":40},{"2023":317},{"2004":145,"2005":128,"2006":199,"2007":132,"2008":199,"2009":142,"2010":132,"2011":142,"2012":141,"2013":151,"2014":600,"2015":159,"2016":281,"2017":688,"2018":159,"2019":945,"2020":358,"2021":451,"2022":829,"2023":155,"2024":136},{"2022":46},{"2022":112},{"pages":1852,"volume":1854},{"VOID":1853},"1-13",{"VOID":1111},"2019-12-10",[922,940],{"id":1858,"createTime":1859,"updateTime":1860,"relativeEntities":1861,"slug":1862,"properties":1863,"entityType":967,"verifyStatus":26,"verifyTime":1860,"verifyNote":968,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1872,"fullTextUrl":28,"authors":1873,"publicationType":1060,"publisherRelationship":2065,"citationCount":28,"citationInfo":28,"publishDate":2114,"publishYear":1251,"citationAnalyzeStatus":880,"lastCitationAnalyze":28,"indexDatabases":2115,"openAccess":28,"references":28,"isForceReanalyzing":1115},"014ce437-fc7c-4f81-b2d9-632bf3218930","2024-01-16T16:34:26.522+00:00","2025-02-23T00:43:40.968+00:00",[],"Validating-stroke-induced-bilateral-ankle-coordination-deficits-using-bilateral-ankle-measure-relationship-with-motor-functions-in-lower-limbs",{"abstract":1864,"title":1866,"references":1868,"doi":1870},{"EN":1865},"Coordinated control between the bilateral ankle joints plays an important role in performing daily life functions, such as walking and running. However, few studies have explored the impact of stroke on movement disorders that decrease the coordination control of the bilateral extremities and may decrease daily activities that require coordination control of the bilateral ankles. This study aimed to investigate the coordination control of the bilateral ankles using a novel bilateral ankle measurement system and evaluate the relationship of bilateral movement coordination control deficits with motor and functional performances of the lower extremities in patients with stroke. Twenty-one healthy adults (36.5 ± 13.2 y\u002Fo) and 19 patients with chronic stroke (58.7 ± 10.5 y\u002Fo) were enrolled. A novel measurement device with embedded rotary potentiometers was used to evaluate bilateral ankle coordination control. Participants were asked to move their dominant (non-paretic) foot from dorsiflexion to plantarflexion position and non-dominant (paretic) foot from dorsiflexion to plantarflexion position (condition 1) simultaneously, and vice versa (condition 2). Alternating time and angle for coordination control with movements of both ankles were calculated for each condition. Motor and functional performance measurements of the lower extremities included the lower-extremity portion of the Fugl-Meyer assessment (FMA-LE), Berg Balance Test (BBS), Timed Up and Go Test (TUG), and Barthel Index (BI). Compared with the healthy group, alternating time was shorter in the stroke group by 8.3% (p = 0.015), and the alternating angles of conditions 1 and 2 were significantly higher than those of the healthy group by 1.4° (p = 0.001) and 2.5° (p = 0.013), respectively. The alternating angle in condition 2 showed moderate correlations with TUG (r = 0.512; p = 0.025), 10-m walk (r = 0.747; p \u003C 0.001), gait speed (r =  − 0.497 to − 0.491; p \u003C 0.05), length (r =  − 0.518 to − 0.551; p \u003C 0.05), and BI (r =  − 0.457; p = 0.049). Stroke decreases alternating time, increases alternating angle, and shows bilateral ankle coordination control deficits temporally and spatially. A higher alternating angle is moderately to highly associated with motor function and lower limb function in patients with stroke.",{"EN":1867},"Validating stroke-induced bilateral ankle coordination deficits using bilateral ankle measure relationship with motor functions in lower limbs",{"VOID":1869},"Kidder SM, Abuzzahab FS Jr, Harris GF, Johnson JE. A system for the analysis of foot and ankle kinematics during gait. IEEE Trans Rehab Eng. 1996;4(1):25–32.\nMenz HB, Morris ME, Lord SR. Foot and ankle characteristics associated with impaired balance and functional ability in older people. J Gerontol A Biol Sci Med Sci. 2005;60(12):1546–52.\nGatev P, Thomas S, Kepple T, Hallett M. Feedforward ankle strategy of balance during quiet stance in adults. J Physiol. 1999;514(Pt 3):915–28.\nCarey LM, Oke LE, Matyas TA. Impaired limb position sense after stroke: a quantitative test for clinical use. Arch Phys Med Rehabil. 1996;77(12):1271–8.\nLin SI, Hsu LJ, Wang HC. Effects of ankle proprioceptive interference on locomotion after stroke. Arch Phys Med Rehabil. 2012;93(6):1027–33. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apmr.2012.01.019.\nLin SI. Motor function and joint position sense in relation to gait performance in chronic stroke patients. Arch Phys Med Rehabil. 2005;86(2):197–203. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.apmr.2004.05.009. (Epub 2005\u002F02\u002F12).\nLee MJ, Kilbreath SL, Refshauge KM. Movement detection at the ankle following stroke is poor. 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Clin Biomech. 2011;26(8):867–72. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.clinbiomech.2011.04.003.\nLiu W-J, Lin L-F, Chiang S-L, Lu L-H, Chen C-Y, Lin C-H. Impacts of stroke on muscle perceptions and relationships with the motor and functional performance of the lower extremities. Sensors. 2021;21(14):4740.\nBi S, Wan C. Comparison of the reaction time of wrist flexion and extension between patients with stroke and age-matched healthy subjects and correlation with clinical measures. Chin Med J. 2013;126(13):2485–8.\nCauraugh JH, Summers JJ. Neural plasticity and bilateral movements: a rehabilitation approach for chronic stroke. Prog Neurobiol. 2005;75(5):309–20. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.pneurobio.2005.04.001.\nCarson RG. Neural pathways mediating bilateral interactions between the upper limbs. Brain Res Rev. 2005;49(3):641–62. https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.brainresrev.2005.03.005.\nBasmajian JV, Kukulka CG, Narayan MG, Takebe K. Biofeedback treatment of foot-drop after stroke compared with standard rehabilitation technique: effects on voluntary control and strength. Arch Phys Med Rehabil. 1975;56(6):231–6.\nLanghorne P, Bernhardt J, Kwakkel G. Stroke rehabilitation. Lancet. 2011;377(9778):1693–702. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0140-6736(11)60325-5.\nKim K, Lee D-K, Jung S-I. Effect of coordination movement using the PNF pattern underwater on the balance and gait of stroke patients. 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neurofeedback (NF) of motor-related brain activity in a biologically-relevant and intuitive way could maximize the utility of a brain-computer interface (BCI) for promoting therapeutic plasticity. We present a BCI capable of providing intuitive and direct control of a video-based grasp. Utilizing magnetoencephalography’s (MEG) high temporal and spatial resolution, we recorded sensorimotor rhythms (SMR) that were modulated by grasp or rest intentions. SMR modulation controlled the grasp aperture of a stop motion video of a human hand. The displayed hand grasp position was driven incrementally towards a closed or opened state and subjects were required to hold the targeted position for a time that was adjusted to change the task difficulty. We demonstrated that three individuals with complete hand paralysis due to spinal cord injury (SCI) were able to maintain brain-control of closing and opening a virtual hand with an average of 63 % success which was significantly above the average chance rate of 19 %. This level of performance was achieved without pre-training and less than 4 min of calibration. In addition, successful grasp targets were reached in 1.96 ± 0.15 s. Subjects performed 200 brain-controlled trials in approximately 30 min excluding breaks. Two of the three participants showed a significant improvement in SMR indicating that they had learned to change their brain activity within a single session of NF. This study demonstrated the utility of a MEG-based BCI system to provide realistic, efficient, and focused NF to individuals with paralysis with the goal of using NF to induce neuroplasticity.",{"EN":2126},"MEG-based neurofeedback for hand rehabilitation",{"VOID":2128},"[]",{"VOID":2130},"Wilson TW, Fleischer A, Archer D, Hayasaka S, Sawaki L. Oscillatory MEG motor activity reflects therapy-related plasticity in stroke patients. Neurorehabil Neural Repair. 2011;25:188–93.\nSchaechter JD. Motor rehabilitation and brain plasticity after hemiparetic stroke. Prog Neurobiol. 2004;73:61–72.\nTecchio F, Zappasodi F, Tombini M, Oliviero A, Pasqualetti P, Vernieri F, et al. Brain plasticity in recovery from stroke: an MEG assessment. Neuroimage. 2006;32:1326–34.\nJurkiewicz MT, Mikulis DJ, McIlroy WE, Fehlings MG, Verrier MC. Sensorimotor cortical plasticity during recovery following spinal cord injury: a longitudinal fMRI study. Neurorehabil Neural Repair. 2007;21:527–38.\nKokotilo KJ, Eng J, Curt A, Boyd LA. Reorganization and preservation of motor control of the brain in spinal cord injury: a systematic review. J Neurotrauma. 2009;26:2113–26.\nWang W, Collinger JL, Perez MA, Tyler-Kabara EC, Cohen LG, Birbaumer N, et al. Neural interface technology for rehabilitation: exploiting and promoting neuroplasticity. Phys Med Rehabil Clin N Am. 2010;21:157–78.\nGrosse-Wentrup M, Mattia D, Oweiss K. Using brain-computer interfaces to induce neural plasticity and restore function. J Neural Eng. 2011;8:025004.\nBirbaumer N, Cohen LG. Brain-computer interfaces: communication and restoration of movement in paralysis. J Physiol. 2007;579:621–36.\nDaly JJ, Wolpaw JR. Brain-computer interfaces in neurological rehabilitation. Lancet Neurol. 2008;7:1032–43.\nMellinger J, Schalk G, Braun C, Preissl H, Rosenstiel W, Birbaumer N, et al. An MEG-based brain-computer interface (BCI). Neuroimage. 2007;36:581–93.\nBuch E, Weber C, Cohen LG, Braun C, Dimyan M, Ard T, et al. Think to move: a neuromagnetic brain-computer interface (BCI) system for chronic stroke. Stroke. 2008;39:910–7.\nSudre GP, Parkkonen L, Bock E, Baillet S, Wang W, Weber DJ. rtMEG: A Real-Time Software Interface for Magnetoencephalography. Comput Intell Neurosci. 2011;2011:327953.\nFlorin E, Bock E, Baillet S. Targeted reinforcement of neural oscillatory activity with real-time neuroimaging feedback. Neuroimage. 2014;88:54–60.\nBoe S, Gionfriddo A, Kraeutner S, Tremblay A, Little G, Bardouille T. Laterality of brain activity during motor imagery is modulated by the provision of source level neurofeedback. Neuroimage. 2014;101C:159–67.\nFoldes ST, Wang W, Collinger JL, Li X, Zhang J, Sudre G, et al. Accessing and Processing MEG Signals in Real-Time: Emerging Applications and Enabling Technologies. In: Magnetoencephalography, Edited by Pang EW. ISBN: 978-953-307-255-5, InTech, doi:10.5772\u002F27356. Available from: http:\u002F\u002Fwww.intechopen.com\u002Fbooks\u002Fmagnetoencephalography\u002Faccessing-and-processing-meg-signals-in-real-time-emerging-applications-and-enabling-technologies.\nBaillet S, Mosher JC, Leahy RM. Electromagnetic brain mapping. IEEE Signal Process Mag. 2001;18(November):14–30.\nRamos-Murguialday A, Broetz D, Rea M, Läer L, Yilmaz O, Brasil FL, et al. Brain-machine interface in chronic stroke rehabilitation: a controlled study. Ann Neurol. 2013;74:100–8.\nPrasad G, Herman P, Coyle D, McDonough S, Crosbie J. Applying a brain-computer interface to support motor imagery practice in people with stroke for upper limb recovery: a feasibility study. J Neuroeng Rehabil. 2010;7:60.\nBuccino G, Solodkin A, Small SL. Functions of the mirror neuron system: implications for neurorehabilitation. Cogn Behav Neurol. 2006;19:55–63.\nDe Vries S, Mulder T. Motor imagery and stroke rehabilitation: a critical discussion. J Rehabil Med. 2007;39:5–13.\nErtelt D, Small S, Solodkin A, Dettmers C, McNamara A, Binkofski F, et al. Action observation has a positive impact on rehabilitation of motor deficits after stroke. Neuroimage. 2007;36 Suppl 2:T164–73.\nIacoboni M, Mazziotta JC. Mirror neuron system: basic findings and clinical applications. Ann Neurol. 2007;62:213–8.\nKirshblum SC, Waring W, Biering-Sorensen F, Burns SP, Johansen M, Schmidt-Read M, et al. Reference for the 2011 revision of the international standards for neurological classification of spinal cord injury. J Spinal Cord Med. 2011;34:547–54.\nGross J, Baillet S, Barnes GR, Henson RN, Hillebrand A, Jensen O, et al. Good practice for conducting and reporting MEG research. Neuroimage. 2013;65:349–63.\nTaulu S, Kajola M, Simola J. Suppression of interference and artifacts by the signal space separation method. Brain Topogr. 2004;16:269–75.\nWang W, Degenhart AD, Kelly JW, Ashmore RC, Collinger JL, Tyler-Kabara EC, et al. Craniux: A LabVIEW-based modular software framework for brain-machine interface research. Comput Intell Neurosci. 2011;2011:363565.\nOostenveld R, Fries P, Maris E, Schoffelen J-M. FieldTrip: Open source software for advanced analysis of MEG, EEG, and invasive electrophysiological data. Comput Intell Neurosci. 2011;2011:156869.\nFoldes ST, Vinjamuri RR, Wang W, Weber DJ, Collinger JL. Stability of MEG for Real-Time Neurofeedback. Conf Proc IEEE Eng Med Biol Soc. 2011;2011:5778–81.\nTaulu S, Hari R. Removal of magnetoencephalographic artifacts with temporal signal-space separation: demonstration with single-trial auditory-evoked responses. Hum Brain Mapp. 2009;30:1524–34.\nNeuper C, Neuper C, Pfurtscheller G, Pfurtscheller G. Evidence for distinct beta reconance frequencies in human EEG related to specific sensorimotor cortical areas. Cinical Neurophysiol. 2001;112:2084–97.\nMcFarland DJ, Miner LA, Vaughan TM, Wolpaw JR. Mu and beta rhythm topographies during motor imagery and actual movements. Brain Topogr. 2000;12:177–86.\nWyrwicka W, Sterman MB. Instrumental conditioning of sensorimotor cortex EEG spindles in the waking cat. Physiol Behav. 1968;3:703–7.\nFetz EE. Operant conditioning of cortical unit activity. Science. 1969;163(February):955–8.\nSterman MB, Friar L. Suppression of seizures in an epileptic following sensorimotor EEG feedback training. Electroencephalogr Clin Neurophysiol. 1972;33:89–95.\nHardt J, Kamiya J. Anxiety change through electroencephalographic alpha feedback seen only in high anxiety subjects. Science. 1978;201(July):79–81.\nShouse MN, Lubar JF. Operant conditioning of EEG rhythms and ritalin in the treatment of hyperkinesis. Biofeedback Self Regul. 1979;4:299–312.\nBlankertz B, Sannelli C, Halder S, Hammer EM, Kübler A, Müller K-R, et al. Neurophysiological predictor of SMR-based BCI performance. Neuroimage. 2010;51:1303–9.\nGrosbras M-H, Beaton S, Eickhoff SB. Brain regions involved in human movement perception: A quantitative voxel-based meta-analysis. Hum Brain Mapp. 2012;33:431–54.\nAvanzini P, Fabbri-Destro M, Dalla Volta R, Daprati E, Rizzolatti G, Cantalupo G. The dynamics of sensorimotor cortical oscillations during the observation of hand movements: An EEG study. PLoS One. 2012;7:1–10.\nCollinger JL, Vinjamuri R, Degenhart AD, Weber DJ, Sudre GP, Boninger ML, et al. Motor-related brain activity during action observation: a neural substrate for electrocorticographic brain-computer interfaces after spinal cord injury. Front Integr Neurosci. 2014;8(February):17.\nNeuper C, Scherer R, Wriessnegger S, Pfurtscheller G. Motor imagery and action observation: modulation of sensorimotor brain rhythms during mental control of a brain-computer interface. Clin Neurophysiol. 2009;120:239–47.\nPress C, Cook J, Blakemore S-J, Kilner J. Dynamic modulation of human motor activity when observing actions. J Neurosci. 2011;31:2792–800.\nMuthukumaraswamy SD, Johnson BW, McNair N. Mu rhythm modulation during observation of an object-directed grasp. Brain Res Cogn Brain Res. 2004;19:195–201.\nWelford AT. Fundamentals of Skill. London: Methuen; 1968.\nLauer RT, Peckham PH, Kilgore KL, Heetderks WJ. Applications of cortical signals to neuroprosthetic control: a critical review. IEEE Trans Rehabil Eng. 2000;8:205–8.\nCaporale N, Dan Y. Spike timing-dependent plasticity: a Hebbian learning rule. Annu Rev Neurosci. 2008;31:25–46.\nLittle G, Boe S, Bardouille T. Head movement compensation in real-time magnetoencephalographic recordings. MethodsX. 2014;1:275–82.",{"VOID":2132},"10.1186\u002Fs12984-015-0076-7","2024-05-12T14:21:31.674+00:00","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-015-0076-7",[2136,2169,2205],{"id":2137,"sortIndex":32,"researcher":28,"roles":2138,"affiliations":2139,"properties":2166,"displayName":2168,"givenName":28,"familyName":28},"f56f14e9-04cd-4f1e-95e6-362736ef9669",[974],[2140,2148,2157],{"id":2141,"sortIndex":32,"affiliation":2142,"properties":28},"60943fa4-a1ed-4264-a059-7e576b163859",{"id":2141,"createTime":28,"updateTime":28,"relativeEntities":2143,"slug":28,"properties":2144,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2147,"statistic":28},[],{"title":2145},{"VI":2146},"VA Pittsburgh Healthcare System, Human Engineering Research Laboratories, Pittsburgh, USA",[],{"id":2149,"sortIndex":40,"affiliation":2150,"properties":2156},"b44637ae-02dd-4688-9b7c-484ca01e449d",{"id":2149,"createTime":28,"updateTime":28,"relativeEntities":2151,"slug":28,"properties":2152,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2155,"statistic":28},[],{"title":2153},{"VI":2154},"Department of Physical Medicine and Rehabilitation, University of Pittsburgh, Pittsburgh, USA",[],{},{"id":2158,"sortIndex":123,"affiliation":2159,"properties":2165},"ccd41789-f1ef-4002-aa7d-17f077a44caf",{"id":2158,"createTime":28,"updateTime":28,"relativeEntities":2160,"slug":28,"properties":2161,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2164,"statistic":28},[],{"title":2162},{"VI":2163},"Center for the Neural Basis of Cognition, Carnegie Mellon University, University of Pittsburgh, Pittsburgh, USA",[],{},{"title":2167},{"VI":2168},"Stephen T. 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Robotic devices to date have successfully achieved precise and accurate quantification but are often limited to the measurement of one or two impairments. Our primary aim is to develop a robotic device that can effectively quantify four main motor impairments of the elbow.  The robotic device, Shoulder Elbow Perturbator, is a one-degree-of-freedom device that can simultaneously manipulate the elbow joint and support the (partial) weight of the human arm. Upper limb impairments of the elbow were quantified based on four experiments on the paretic arm in ten stroke patients (mean age 65 ± 10 yrs, 9 males, post-stroke) and the non-dominant arm in 20 healthy controls (mean age 65 ± 14 yrs, 6 males). The maximum strength of elbow flexor and elbow extensor muscles was measured isometrically at 90-degree elbow flexion. The maximal active extension angle of the elbow was measured under different arm weight support levels to assess abnormal synergy. Torque resistance was analyzed during a slow (6°\u002Fs) passive elbow rotation, where the elbow moved from the maximal flexion to maximal extension angle and back, to assess elastic joint properties. The torque profile was evaluated during fast (100°\u002Fs) passive extension rotation of the elbow to estimate spasticity. The ten chronic stroke patients successfully completed the measurement protocol. The results showed impairment values outside the 10th and 90th percentile reference intervals of healthy controls. Individual patient profiles were determined and illustrated in a radar figure, to support clinicians in developing targeted treatment plans. The Shoulder Elbow Perturbator can effectively quantify the four most important impairments of the elbow in stroke patients and distinguish impairment scores of patients from healthy controls. These results are promising for objective and complete quantification of motor impairments of the elbow and monitoring patient prognosis. Our newly developed Shoulder Elbow Perturbator can therefore in the future be employed to evaluate treatment effects by comparing pre- and post-treatment assessments.",{"EN":2305},"Development of a single device to quantify motor impairments of the elbow: proof of concept",{"VOID":2307},"Zackowski KM, Dromerick AW, Sahrmann SA, Thach WT, Bastian AJ. How do strength, sensation, spasticity and joint individuation relate to the reaching deficits of people with chronic hemiparesis? Brain. 2004;127(Pt 5):1035–46.\nRaghavan P. Upper limb motor impairment post stroke. Phys Med Rehabil Clin N Am. 2015;26(4):599–610.\nMorris JH, van Wijck F, Joice S, Donaghy M. Predicting health related quality of life 6 months after stroke: the role of anxiety and upper limb dysfunction. Disabil Rehabil. 2013;35(4):291–9.\nFugl-Meyer AR, Jääskö L, Leyman I, Olsson S, Steglind S. The post-stroke hemiplegic patient. 1. a method for evaluation of physical performance. Scand J Rehabil Med. 1975;7(1):13–31.\nMorris S. Ashworth and tardieu scales: their clinical relevance for measuring spasticity in adult and paediatric neurological populations. Physical Therapy Reviews. 2002;7(1):53–62.\nMeseguer-Henarejos AB, Sánchez-Meca J, López-Pina JA, Carles-Hernández R. Inter- and intra-rater reliability of the Modified Ashworth Scale: a systematic review and meta-analysis. Eur J Phys Rehabil Med. 2018;54(4):576–90.\nPandyan AD, Johnson GR, Price CI, Curless RH, Barnes MP, Rodgers H. A review of the properties and limitations of the Ashworth and modified Ashworth Scales as measures of spasticity. Clin Rehabil. 1999;13(5):373–83.\nBar-On L, Aertbelien E, Molenaers G, Dan B, Desloovere K. Manually controlled instrumented spasticity assessments: a systematic review of psychometric properties. Dev Med Child Neurol. 2014;56(10):932–50.\nFleuren JF, Voerman GE, Erren-Wolters CV, Snoek GJ, Rietman JS, Hermens HJ, et al. Stop using the Ashworth Scale for the assessment of spasticity. J Neurol Neurosurg Psychiatry. 2010;81(1):46–52.\nLi F, Wu Y, Li X. Test-retest reliability and inter-rater reliability of the Modified Tardieu Scale and the Modified Ashworth Scale in hemiplegic patients with stroke. Eur J Phys Rehabil Med. 2014;50(1):9–15.\nvan der Krogt H, Klomp A, de Groot JH, de Vlugt E, van der Helm FC, Meskers CG, et al. Comprehensive neuromechanical assessment in stroke patients: reliability and responsiveness of a protocol to measure neural and non-neural wrist properties. J Neuroeng Rehabil. 2015;12:28.\nStarsky AJ, Sangani SG, McGuire JR, Logan B, Schmit BD. Reliability of biomechanical spasticity measurements at the elbow of people poststroke. Arch Phys Med Rehabil. 2005;86(8):1648–54.\nSloot LH, van der Krogt MM, de Gooijer-van de Groep KL, van Eesbeek S, de Groot J, Buizer AI, et al. The validity and reliability of modelled neural and tissue properties of the ankle muscles in children with cerebral palsy. Gait Posture. 2015;42(1):7–15.\nTrumbower RD, Ravichandran VJ, Krutky MA, Perreault EJ. Contributions of altered stretch reflex coordination to arm impairments following stroke. J Neurophysiol. 2010;104(6):3612–24.\nEllis MD, Lan Y, Yao J, Dewald JP. Robotic quantification of upper extremity loss of independent joint control or flexion synergy in individuals with hemiparetic stroke: a review of paradigms addressing the effects of shoulder abduction loading. J Neuroeng Rehabil. 2016;13(1):95.\nMcPherson JG, Stienen AHA, Schmit BD, Dewald JPA. Biomechanical parameters of the elbow stretch reflex in chronic hemiparetic stroke. Exp Brain Res. 2019;237(1):121–35.\nAnsari NN, Naghdi S, Hasson S, Azarsa MH, Azarnia S. The Modified Tardieu Scale for the measurement of elbow flexor spasticity in adult patients with hemiplegia. Brain Inj. 2008;22(13–14):1007–12.\nBeer F, Given JD, Dewald PA. Task-dependent weakness at the elbow in patients with hemiparesis. Arch Phys Med Rehabil. 1999;80(7):766–72. https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0003-9993(99)90225-3.\nWittstein J, Queen R, Abbey A, Moorman CT 3rd. Isokinetic testing of biceps strength and endurance in dominant versus nondominant upper extremities. J Shoulder Elbow Surg. 2010;19(6):874–7.\nKrabben T, Prange GB, Molier BI, Rietman JS, Buurke JH. Objective measurement of synergistic movement patterns of the upper extremity following stroke: an explorative study. IEEE Int Conf Rehabil Robot. 2011;2011:5975430.\nEllis MD, Sukal T, DeMott T, Dewald JP. Augmenting clinical evaluation of hemiparetic arm movement with a laboratory-based quantitative measurement of kinematics as a function of limb loading. Neurorehabil Neural Repair. 2008;22(4):321–9.\nCoscia M, Cheung VC, Tropea P, Koenig A, Monaco V, Bennis C, et al. The effect of arm weight support on upper limb muscle synergies during reaching movements. J Neuroeng Rehabil. 2014;11:22.\nSukal T, Ellis M. Use of a novel robotic system for quantification of upper limb work area following stroke. Conf Proc IEEE Eng Med Biol Soc. 2005;5:5032–5.\nHawe RL, Dewald JP. Development of a method to quantify inter-limb coupling in individuals with hemiparetic stroke. Annu Int Conf IEEE Eng Med Biol Soc. 2015;2015:3476–9.\nLorentzen J, Grey MJ, Crone C, Mazevet D, Biering-Sørensen F, Nielsen JB. Distinguishing active from passive components of ankle plantar flexor stiffness in stroke, spinal cord injury and multiple sclerosis. Clin Neurophysiol. 2010;121(11):1939–51.\nGiven JD, Dewald JP, Rymer WZ. Joint dependent passive stiffness in paretic and contralateral limbs of spastic patients with hemiparetic stroke. J Neurol Neurosurg Psychiatry. 1995;59(3):271–9.\nPlantin J, Pennati GV, Roca P, Baron JC, Laurencikas E, Weber K, et al. Quantitative assessment of hand spasticity after stroke: imaging correlates and impact on motor recovery. Front Neurol. 2019;10:836.\nChung SG, van Rey E, Bai Z, Rymer WZ, Roth EJ, Zhang LQ. Separate quantification of reflex and nonreflex components of spastic hypertonia in chronic hemiparesis. Arch Phys Med Rehabil. 2008;89(4):700–10.\nCenten A, Lowrey CR, Scott SH, Yeh TT, Mochizuki G. KAPS (kinematic assessment of passive stretch): a tool to assess elbow flexor and extensor spasticity after stroke using a robotic exoskeleton. J Neuroeng Rehabil. 2017;14(1):59.\nde Gooijer-van de Groep KL, de Vlugt E, van der Krogt HJ, Helgadóttir Á, Arendzen JH, Meskers CGM, et al. Estimation of tissue stiffness, reflex activity, optimal muscle length and slack length in stroke patients using an electromyography driven antagonistic wrist model. Clin Biomech. 2016;35:93–101.\nAndringa A, van Wegen E, van de Port I, Kwakkel G, Meskers C. Measurement properties of the neuroflexor device for quantifying neural and non-neural components of wrist hyper-resistance in chronic stroke. Front Neurol. 2019;10:730.\nMcPherson JG, Stienen AH, Drogos JM, Dewald JP. The relationship between the flexion synergy and stretch reflexes in individuals with chronic hemiparetic stroke. IEEE Int Conf Rehabil Robot. 2011;2011:5975516.\nMcPherson JG, Stienen AH, Drogos JM, Dewald JP. Modification of spastic stretch reflexes at the elbow by flexion synergy expression in individuals with chronic hemiparetic stroke. Arch Phys Med Rehabil. 2018;99(3):491–500.\nOtaka E, Otaka Y, Kasuga S, Nishimoto A, Yamazaki K, Kawakami M, et al. Clinical usefulness and validity of robotic measures of reaching movement in hemiparetic stroke patients. J Neuroeng Rehabil. 2015;12:66.\nGoffredo M, Mazzoleni S, Gison A, Infarinato F, Pournajaf S, Galafate D, et al. Kinematic parameters for tracking patient progress during upper limb robot-assisted rehabilitation: an observational study on subacute stroke subjects. Appl Bionics Biomech. 2019;2019:4251089.\nBandinelli S, Benvenuti E, Del Lungo I, Baccini M, Benvenuti F, Di Iorio A, et al. Measuring muscular strength of the lower limbs by hand-held dynamometer: a standard protocol. Aging (Milano). 1999;11(5):287–93.\nScholtes VA, Becher JG, Beelen A, Lankhorst GJ. Clinical assessment of spasticity in children with cerebral palsy: a critical review of available instruments. Dev Med Child Neurol. 2006;48(1):64–73.\nPoole JL, Whitney SL. Assessments of motor function post stroke. Phys Occup Ther Geriatr. 2001;19(2):1–22.",{"VOID":2309},"10.1186\u002Fs12984-022-01050-2","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002Fs12984-022-01050-2",[2312,2336,2356,2371,2384,2404,2424],{"id":2313,"sortIndex":32,"researcher":28,"roles":2314,"affiliations":2315,"properties":2333,"displayName":2335,"givenName":28,"familyName":28},"625309b3-8226-40f6-9a3c-d98228cf0d57",[974],[2316,2324],{"id":2317,"sortIndex":32,"affiliation":2318,"properties":28},"74f5abfe-9ca0-4b6a-83fb-d22f00be8d57",{"id":2317,"createTime":28,"updateTime":28,"relativeEntities":2319,"slug":28,"properties":2320,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2323,"statistic":28},[],{"title":2321},{"VI":2322},"Department of Rehabilitation Medicine, Erasmus MC, University Medical Center Rotterdam, Rotterdam, the 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of reaching movements for manual work, vehicle operation, or interactions with manual interfaces requires concurrent gaze control for visual guidance of the hand. We hypothesize that reaching movements are based on negotiated strategies to resolve possible conflicting demands placed on body segments shared by the visual (gaze) and manual (hand) control systems. Further, we hypothesize that a multiplicity of possible spatial configurations (redundancy) in a movement system enables a resolution of conflicting demands that does not require sacrificing the goals of the two systems. The simultaneous control of manual reach and gaze during seated reaching movements was simulated by solving an inverse kinematics model wherein joint trajectories were estimated from a set of recorded hand and head movements. A secondary objective function, termed negotiation function, was introduced to describe a means for the manual reach and gaze directing systems to balance independent goals against (possibly competing) demands for shared resources, namely the torso movement. For both systems, the trade-off may be resolved without sacrificing goal achievement by taking advantage of redundant degrees of freedom. Estimated joint trajectories were then compared to joint movement recordings from ten participants. Joint angles were predicted with and without the negotiation function in place, and model accuracy was determined using the root-mean-square errors (RMSEs) and differences between estimated and recorded joint angles. The prediction accuracy was generally improved when negotiation was included: the negotiated control reduced RMSE by 16% and 30% on average when compared to the systems with only manual or visual control, respectively. Furthermore, the RMSE in the negotiated control system tended to improve with torso movement amplitude. The proposed model describes how multiple systems cooperate to perform goal-directed human movements when those movements draw upon shared resources. Allocation of shared resources can be undertaken by a negotiation process that is aware of redundancies and the existence of multiple solutions within the individual systems.",{"EN":2508},"Negotiated control between the manual and visual systems for visually guided hand reaching movements",{"VOID":2510},"Paillard J: Fast and slow feedback loops for the visual correction of spatial errors in a pointing task: a reappraisal. Can J Physiol Pharmacol 1996, 74: 401-417. 10.1139\u002Fy96-033\nSrinivasan D, Martin BJ: Eye-hand coordination of symmetric bimanual reaching tasks: temporal aspects. Exp Brain Res Exp Hirnforsch Expérimentation Cérébrale 2010, 203: 391-405. 10.1007\u002Fs00221-010-2241-3\nHelsen WF, Elliott D, Starkes JL, Ricker KL: Temporal and spatial coupling of point of gaze and hand movements in aiming. J Mot Behav 1998, 30: 249-259. 10.1080\u002F00222899809601340\nHelsen WF, Elliott D, Starkes JL, Ricker KL: Coupling of eye, finger, elbow, and shoulder movements during manual aiming. J Mot Behav 2000, 32: 241-248. 10.1080\u002F00222890009601375\nTerrier R, Forestier N, Berrigan F, Germain-Robitaille M, Lavallière M, Teasdale N: Effect of terminal accuracy requirements on temporal gaze-hand coordination during fast discrete and reciprocal pointings. J NeuroEngineering Rehabil 2011, 8: 10. 10.1186\u002F1743-0003-8-10\nHarris LR, Zikovitz DC, Kopinska AE: Frames of Reference With Examples from Driving and Auditory Localization. In Vis Action. 1st edition. Edited by: Harris LR, Jenkin M. Cambridge, UK: Cambridge University Press; 2010.\nCrawford JD, Medendorp WP, Marotta JJ: Spatial transformations for Eye–hand coordination. J Neurophysiol 2004, 92: 10-19. 10.1152\u002Fjn.00117.2004\nSergio LE, Scott SH: Hand and joint paths during reaching movements with and without vision. Exp Brain Res Exp 1998, 122: 157-164. 10.1007\u002Fs002210050503\nSciavicco L, Siciliano B: Modeling and Control of Robot Manipulators. New York, NY: McGraw-Hill Companies Inc.; 1996.\nZhang X, Kuo AD, Chaffin DB: Optimization-based differential kinematic modeling exhibits a velocity-control strategy for dynamic posture determination in seated reaching movements. J Biomech 1998, 31: 1035-1042. 10.1016\u002FS0021-9290(98)00117-1\nWang X: A behavior-based inverse kinematics algorithm to predict arm prehension postures for computer-aided ergonomic evaluation. J Biomech 1999, 32: 453-460. 10.1016\u002FS0021-9290(99)00023-8\nKomura T, Shinagawa Y, Kunii TL: An Inverse Kinematics Method Based on Muscle Dynamics. In Proc Int Conf Comput Graph. Washington, DC, USA: IEEE Computer Society; 2001:15-22. [CGI’01]\nSiciliano B: Kinematic control of redundant robot manipulators: a tutorial. 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Warrendale, PA: SAE International; 1999.\nLam JP, Veall MR: Bootstrap prediction intervals for single period regression forecasts. Int J Forecast 2002, 18: 125-130. 10.1016\u002FS0169-2070(01)00112-1\nMoore DS, McCabe GP, Duckworth WM, Sclove SL: The Practice of Business Statistics Companion Chapter 18: Bootstrap Methods and Permutation Tests. 1st edition. New York, NY: W. H. Freeman; 2003.\nWehrens R, Putter H, Buydens L: The bootstrap: a tutorial. Chemom Intell Lab Syst 2000, 54: 35-52. 10.1016\u002FS0169-7439(00)00102-7\nLi G, Haslegrave CM: Seated work postures for manual, visual and combined tasks. Ergonomics 1999, 42: 1060-1086. 10.1080\u002F001401399185144\nKim KH, Dukic T, Hanson L, Martin BJ: The role of visual and manual demand in movement organization. SAE Trans J Passeng Cars Electron Electr Syst 2006, 1092-1095.\nTortora GJ, Derrickson B: Principles of Anatomy & Physiology. Hoboken, NJ: Wiley; 2012.\nZaciorskij VM: Kinetics of Human Motion. Champaign, Ill: u.a.: Human Kinetics; 2002.\nPaillard J, Amblard B: Static Versus Kinetic Visual Cues for the Processing of Spatial Relationships. In Brain Mech Spat Vis. Edited by: Ingle D. Amsterdam, Netherlands: Springer; 1985:367-385.\nJeannerod M: The Neural and Behavioural Organization of Goal-Directed Movements. Oxford: Clarendon; 1988.",{"VOID":2512},"10.1186\u002F1743-0003-11-102","https:\u002F\u002Fjneuroengrehab.biomedcentral.com\u002Farticles\u002F10.1186\u002F1743-0003-11-102",[2515,2530,2545],{"id":2516,"sortIndex":32,"researcher":28,"roles":2517,"affiliations":2518,"properties":2527,"displayName":2529,"givenName":28,"familyName":28},"df25c953-2e3c-4933-b575-87c9f09f35a6",[974],[2519],{"id":2520,"sortIndex":32,"affiliation":2521,"properties":28},"04b2b181-0c35-4290-9ac4-a6c4b865e409",{"id":2520,"createTime":28,"updateTime":28,"relativeEntities":2522,"slug":28,"properties":2523,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2526,"statistic":28},[],{"title":2524},{"VI":2525},"Washington State Department of Labor and Industries, Safety and Health Assessment and Research for Prevention Program, Olympia, USA",[],{"title":2528},{"VI":2529},"K Han 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