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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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pools in northeastern North America are typically seasonal woodland pools that support breeding populations of amphibians and invertebrates dependent upon fishless environments for successful reproduction. A survey of 304 vernal pools in southern, central, and northern Maine, USA was conducted to assess pool physical characteristics, landscape setting, and presence of pool-breeding amphibians for the purpose of guiding potential pool conservation strategies. In particular, information on reproductive effort by pool-breeding amphibians was used to assess the statewide applicability of the Maine Natural Resources Protection Act’s proposed definition of Significant Vernal Pool, a category of Significant Wildlife Habitats that allows closer environmental review of proposed impacts to vernal pools. The results of our study show regional differences in pool characteristics and amphibian usage. Defining “significance” based on number of egg masses and diversity of vernal pool indicator species is a useful tool but should be considered in the context of such landscape characteristics as availability of suitable terrestrial habitat and distribution of other breeding habitats and wetlands.",{"EN":1026},"Evaluating vernal pools as a basis for conservation strategies: A maine case study",{"VOID":1028},"Adam, M. D. and M. J. Lacki. 1993. Factors affecting amphibian use of road-rut ponds in Daniel Boone National Forest. Transactions of the Kentucky Academy of Sciences 54:13–16.\nBrooks, R. T., J. Stone, and P. Lyons. 1998. An inventory of seasonal forest ponds on the Quabbin Reservoir watershed, Massachusetts. Northeastern Naturalist 5:219–230.\nBurne, M. R. 2001. Massachusetts aerial photo survey of potential vernal pools. Natural Heritage and Endangered Species Program, Department of Fisheries and Wildlife, Westborough, MA, USA.\nCalhoun, A. J. K. 2003. Maine citizen’s guide to locating and documenting vernal pools. Maine Audubon Society, Falmouth, ME, USA.\nCalhoun, A. J. K. and P. K. deMaynadier. 2003. Forestry habitat management guidelines for vernal pool wildlife. United States Environmental Protection Agency, Boston, MA, USA.\nCalhoun, A. J. K. and M. W. Klemens. 2002. Best development practices for conserving pool-breeding amphibians in residential and commercial developments in the northeastern U.S. Metropolitan Conservation Alliance, Wildlife Conservation Alliance. Bronx, NY, USA. MCA Technical Paper No. 5.\nColburn, E. A. 1997. Certified: a Citizen’s Step-by-Step Guide to Protecting Vernal Pools. Massachusetts Audubon Society, Lincoln, MA, USA.\nCollins, J. P. and H. M. Wilbur. 1979. Breeding habits and habitats of the amphibians of the Edwin S. George Reserve, Michigan, with notes on the local distribution of fishes. Occasional Papers of the Museum of Zoology 686:1–34.\nCowardin, L. M., V. Carter, F. C. Golet, and E. T. LaRoe. 1979. Classification of wetlands and deepwater habitats of the United States. US Fish and Wildlife Service, Office of Biological Services, Washington, DC, USA. FWS\u002FOBS-79\u002F31.\ndeMaynadier, P. G. and M. L. Hunter, Jr. 1998. Effects of silvicultural edges on the distribution and abundance of amphibians in Maine. Conservation Biology 12:340–352.\ndeMaynadier, P. G. and M. L. Hunter, Jr. 1999. Forest canopy closure and juvenile emigration by pool-breeding amphibians in Maine. Journal of Wildlife Management 63:441–450.\nDiMauro, D. and M. L. Hunter, Jr. 2002. Reproduction of amphibians in natural and anthropogenic temporary pools in managed forests. Forest Science 48:397–406.\nFahrig, L., J. H. Pedlar, S. E. Pope, P. D. Taylor, and J. F. Wegner. 1995. Effect of road traffic on amphibian density. Biological Conservation 73:177–182.\nGibbs, J. P. 1993. Importance of small wetlands for the persistence of local populations of wetland-associated animals. Wetlands 13: 25–31.\nGibbs, J. P. 2000. Wetland loss and biodiversity conservation. Conservation Biology 14:314–317.\nGuerry, A. and M. L. Hunter Jr. 2002. Amphibian distributions in a landscape of forests and agriculture: An examination of landscape composition and configuration. Conservation Biology 16: 745–754.\nJoyal, L. A., M. McCollough, and M. L. Hunter, Jr. 2001. Landscape ecology approaches to wetland species conservation: a case study of two turtle species in southern Maine. Conservation Biology 15: 1755–1762.\nKenney, L. P. 1991. Vernal pools in a suburban community. Master’s Thesis. Harvard University, Cambridge, MA, USA.\nMarsh, D. M. and P. C. Trenham. 2001. Metapopulation dynamics and amphibian conservation. Conservation Biology 15:40–49.\nMunger, J. C., M. Gerber, K. Madrid, M. A. Carroll, W. Petersen, and L. Heberger. 1998. U.S. National Wetland Inventory classifications as predictors of the occurrence of Columbia Spotted Frogs (Rana luteiventris) and Pacific Treefrogs (Hyla regilla). Conservation Biology 12:320–330.\nSemlitsch, R. D. 1998. Biological delineation of terrestrial buffer zones for pond-breeding amphibians. Conservation Biology 12:1113–1119.\nSemlitsch, R. D. and J. R. Bodie. 1998. Are small, isolated wetlands expendable? Conservation Biology 12:1129–1133.\nShoop, C. R. 1965. Orientation of Ambystoma maculatum: movements to and from breeding ponds. Science 149:558–559.\nSnodgrass, J., M. J. Komoroski, A. L. Bryan Jr., and J. Burger. 2000. Relationships among isolated wetland size, hydroperiod, and amphibian species richness: implications for wetland regulation. Conservation Biology 14:414–419.\nStone, J. S. 1992. Vernal pools in Massachusetts: aerial photographic identification, biological and physiographic characteristics, and state certification criteria. Master’s Thesis. University of Massachusetts, Amherst, MA, USA.\nTappan, A. (ed.). 1997. Identification and Documentation of Vernal Pools in New Hampshire. New Hampshire Fish and Game Department, Concord, MA, USA.\nTiner, R. W. Jr. 1990. Use of high-altitude aerial photography for inventorying forested wetlands in the United States. Forest Ecology and Management 33\u002F34:593–604.\nWilkinson, L., M. Hill, and E. Vang. 1992. Systat for windows Version 5. Systat Inc., Evanston, IL, USA.\nWindmiller, B. S. 1990. The limitations of Massachusetts regulatory protection for temporary pool breeding amphibians. Master’s Thesis. Tufts University, Medford, MA, USA.\nWindmiller, B. S. 1996. The pond, the forest, and the city: spotted salamander ecology and conservation in a human-dominated landscape. Ph. D. Dissertation. Tufts University, Medford, MA, USA.\nZar, J. H. 1984. Biostatistical Analysis. Prentice Hall, Englewood Cliffs, NJ, USA.",{"VOID":1030},"10.1672\u002F0277-5212(2003)023[0070:EVPAAB]2.0.CO;2","PUBLICATION","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1672\u002F0277-5212(2003)023[0070:EVPAAB]2.0.CO;2",[1034,1050,1063,1078],{"id":1035,"sortIndex":32,"researcher":28,"roles":1036,"affiliations":1038,"properties":1047,"displayName":1049,"givenName":28,"familyName":28},"5d2732eb-0c09-4fbb-80a8-c6c43830346a",[1037],"AUTHOR",[1039],{"id":1040,"sortIndex":32,"affiliation":1041,"properties":28},"99efface-367b-428a-b5cf-27671dc557dc",{"id":1040,"createTime":28,"updateTime":28,"relativeEntities":1042,"slug":28,"properties":1043,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1046,"statistic":28},[],{"title":1044},{"VI":1045},"Department of Plant, Soil and Environmental Sciences, University of Maine, Orono, USA",[],{"title":1048},{"VI":1049},"Aram J. K. Calhoun",{"id":1051,"sortIndex":40,"researcher":28,"roles":1052,"affiliations":1053,"properties":1060,"displayName":1062,"givenName":28,"familyName":28},"c55dbb40-36c1-471f-9a09-3e637a01723b",[1037],[1054],{"id":1040,"sortIndex":32,"affiliation":1055,"properties":28},{"id":1040,"createTime":28,"updateTime":28,"relativeEntities":1056,"slug":28,"properties":1057,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1059,"statistic":28},[],{"title":1058},{"VI":1045},[],{"title":1061},{"VI":1062},"Tracey E. 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:1163,"doi":1165},{"EN":1160},"Arbuscular mycorrhizae, which are plant root-fungal symbioses, are common associates of vascular plants. Such relationships, however, are thought to be rare in wetland plant roots, although several recent studies suggest that arbuscular mycorrhizae may be important in wetland ecosystems. Our objectives were to determine (1) the level of arbuscular mycorrhizal colonization of plant roots in three freshwater marshes and (2) the effect of restoration status, hydrologic zone, and plant species identity on mycorrhizal colonization. We quantified the percentage of plant roots colonized by mycorrhizal fungi in one reference and two restored freshwater marshes in northern Indiana, USA during summer 1999. Roots were collected from soil cores taken around dominant plant species present in each of three hydrologie zones and then stained for microscopic examination of mycorrhizal colonization. Mycorrhizae were present in each wetland, in all hydrologie zones and in all sampled plants, includingCarex andScirpus species previously thought to be non-mycorrhizal. Both restored and reference wetlands had moderate levels of mycorrhizal colonization, but no clear trends in colonization were seen with hydrologie zone, which has been hypothesized to regulate the formation of mycorrhizae in wetlands. Mycorrhizal colonization levels in the roots of individual species ranged from 3 to 90% and were particularly large in members of the Poaceae (grass) family. Our results suggest that arbuscular mycorrhizae may be widely distributed across plant species and hydrologic zones in both restored and reference freshwater marshes. Thus, future research should examine the functional role of mycorrhizal fungi in freshwater wetlands.",{"EN":1162},"Mycorrhizal colonization across hydrologic gradients in restored and reference freshwater wetlands",{"VOID":1164},"Abbott, L. K. and A. D. Robson. 1991. Factors influencing the occurrence of vesicular-arbuscular mycorrhizas. Agriculture, Ecosystems and Environment 35:121–150.\nAllen, M. F. 1991. The Ecology of Mycorrhizae Cambridge University Press, New York, NY, USA.\nAllen, M. F. 1996. The Ecology of Arbuscular Mycorrhizas: a look back into the 20th century and a peek into the 21st. Mycological Research 100:769–782.\nAllen, E. B. and M. F. Allen. 1990. The mediation of competition by mycorrhizae in successional and patchy environments. p. 367–389.In J. B. Grace and D. Tilman (eds.) Perspectives on Plant Competition. Academic Press, Inc. San Diego, CA, USA.\nAziz, T., D. M. Sylvia, and R. F. Doren. 1995. Activity and species composition of arbuscular mycorrhizal fungi following soil removal. Ecological Applications 5:776–784.\nBeck-Nielsen, D. and T. Vindaek Madsen. 2001. Occurrence of vesicular-arbuscular mycorrhiza in aquatic macrophytes from lakes and streams. Aquatic Botany 71:141–148.\nBrown, A. M. and C. Bledsoe. 1996. Spatial and temporal dynamics of mycorrhizas inJaumea carnosa, a tidal saltmarsh halophyte. Journal of Ecology 84:703–715.\nBrundrett, M.. 1991. Mycorrhizas in Natural Ecosystems. p. 171–277.In M. Begon, A. H. Fitter, and A. Macfadyen (eds.) Advances in Ecological Research, Volume 21. Academic Press, London, UK.\nCooke, J. C. and M. W. Lefor. 1990. Comparison of vesicular-arbuscular mycorrhizae in plants from disturbed and adjacent undisturbed regions of coastal salt marsh in Clinton, Connecticut, USA. Environmental Management 14:131–137.\nCooke, J. C. and M. W. Lefor. 1998. The mycorrhizal status of selected plant species from Connecticut wetlands and transition zones. Restoration Ecology 6:214–222.\nCornwell, W. K., B. L. Bedford, and C. T. Chapin. 2001. Occurrence of arbuscular mycorrhizal fungi in a phosphorus-poor wetland and mycorrhizal response to phosphorus fertilization. American Journal of Botany 88:1824–1829.\nFrancis, R. and D. J. Read. 1994. The contributions of mycorrhizal fungus to the determination of plant community structure. Plant and Soil 159:11–25.\nGiovannetti, M. and B. Mosse. 1980. 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The mycorrhizal status of an emergent aquatic,Lythrum salicaria L., at different levels of phosphorus availability. Mycorrhiza 9:191–197.\nWigand, C. and J. C. Stevenson, 1994. The presence and possible ecological significance of mycorrhizae of the submersed macrophyte,Vallisneria americana. Estuaries 17:206–215.",{"VOID":1166},"10.1672\u002F0277-5212(2003)023[0961:MCAHGI]2.0.CO;2","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1672\u002F0277-5212(2003)023[0961:MCAHGI]2.0.CO;2",[1170,1185,1198,1211],{"id":1171,"sortIndex":32,"researcher":28,"roles":1172,"affiliations":1173,"properties":1182,"displayName":1184,"givenName":28,"familyName":28},"f468d2ad-df95-430c-91d1-fa942d9c7a52",[1037],[1174],{"id":1175,"sortIndex":32,"affiliation":1176,"properties":28},"151cccf5-1355-4575-99e6-649ad12e7457",{"id":1175,"createTime":28,"updateTime":28,"relativeEntities":1177,"slug":28,"properties":1178,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1181,"statistic":28},[],{"title":1179},{"VI":1180},"Department of Biological Sciences, University of Notre Dame, Notre Dame, USA",[],{"title":1183},{"VI":1184},"Candice R. 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90,"doi":1292},{"EN":1287},"The effects of hydrologic conditions, water quality gradients, and vegetation on nitrous oxide gaseous emissions were investigated in two identical 1-ha surface-flow created riverine wetlands in Columbus, Ohio, USA. For two years, both wetlands experienced seasonal (winter-spring) controlled hydrologic flood pulses followed by one year in which they received a steady flow rate of water. Nitrous oxide fluxes were quantified in a transverse gradient at different elevations (edge plots and high marsh plots with alternate wet and dry conditions, and low marsh plots and open water plots that were permanently flooded). The highest average of N2O fluxes was observed in high marsh plots (21.8 ± 2.5 μg-N m−2 h−1), followed by edge plots (12.6 ± 2.5 μg-N m−2 h−1), open water plots (9.9 ± 2.1 μg-N m−2 h−1), and low marsh plots (7.0 ± 4.8 μg-N m−2 h−1). Highest nitrous oxide fluxes were consistently observed in high marsh plots during summer when soil temperatures were ≥ 20°C. In permanently flooded plots without vegetation, nitrous oxide fluxes were low, regardless of flood-pulse conditions. In high marsh plots, water table remained near the soil surface one week after flooding, causing an increase in N2O fluxes (25.9 ± 13.9 μg-N m−2 h−1) compared with fluxes before (2.4 ± 6.4 2.2 μg-N m−2 h−1) and during (6.9 ± 2.2 μg-N m−2 h−1) flooding. In edge plots, nitrous oxide emissions increased during and after the flooding (11.3 ± 3.2 and 7.3 ± 3.3 μg-N m−2 h−1) compared with fluxes before the flood pulse (4.1 ±1.8 μg-N m−2 h−1). In low marsh and edge zones, no significant (P> 0.05) differences were observed in the seasonal N2O fluxes in the pulsing year versus steady-flow year. Spring N2O fluxes from high marsh plots were significantly (P=0.04) higher under steady-flow conditions (26.2 ± 5.5 μg-N m−2 h−1) than under pulsing conditions (9.6 ± 3.6 μg-N m−2 h−1), probably due to the water table near the surface that prevailed in those plots under steady flow condition. N2O fluxes were higher in plots with vegetation (39.6 ± 13.7 μg-N m−2 h−1) than in plots without vegetation (−3.6 ± 13.7 μg-N m−2 h−1) when plots were inundated; however, when no surface water was present, N2O fluxes were similar in plots with and without vegetation. Implications for large-scale wetland creation and restoration in the Mississippi River Basin and elsewhere for controlling nitrogen are discussed.",{"EN":1289},"Influence of hydrologic pulses, flooding frequency, and vegetation on nitrous oxide emissions from created riparian marshes",{"VOID":1291},"Altor, A. and W. J. Mitsch. in press. Methane flux from created wetlands: Relationship to macrophytes and intermittent vs. continuous inundation. Ecological Engineering.\nAnderson, C. J., W. J. Mitsch, and R. W. Nairn. 2005. Temporal and spatial development of surface soil conditions in two created riverine marshes. Journal Environmental Quality 34: 2072–2081.\nAnderson, C. J. and W. J. Mitsch. 2006. 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Emissions of nitrous oxide (N2O) from a tidal, freshwater river, the Hudson River, New York. Environmental Science and Technology 35: 991–996.\nDavisson, T. E. and L. Leonardson. 1997. Production of nitrous oxide in artificially flooded and drained soils. Wetland Ecology and Management 5: 111–119.\nDhondt, K., P. Boeckx, G. Hofman, and G. Van Cleemput. 2004. Temporal and spatial patterns of denitrification enzyme activity and nitrous oxide fluxes in three adjacent vegetated riparian buffers zones. Biology and Fertility of Soils 40: 243–251.\nFey, A., G. Benckiser, and J. C. G. Ottow. 1999. Emissions of nitrous oxide from a constructed wetland using a ground filter and macrophytes in wastewater purification of a dairy farm. Biology and Fertility of Soils 29: 354–359.\nFillipi, E. A., W. J. Mitsch, and W. A. Dick. 1999. The role of soil organic carbon on denitrification potential in newly created wetlands. p. 119–124, In W. J. Mitsch and V. Bouchard (eds.) Olentangy River Wetland Research Park Annual Report 1998, School of Natural Resources, The Ohio State University, Columbus, OH, USA.\nFreeman, C., A. M. Lock, S. Hughes, and B. Reynolds. 1997. Nitrous oxide emissions and the use of wetlands for water quality amelioritation. Environmental Science and Technology 31: 2438–2440.\nHefting, M., R. Bobbink, and H. Culawe. 2003. Nitrous oxide emissions and denitrification in chronically nitrate-loaded riparian buffer zones. Journal of Environmental Quality 32: 1194–1203.\nHolland, E., G. D. Robertson, J. Greenberg, M. P. Groffman, R. D. Boone, and J. Gosz. 1999. CO2, N2O and CH4 exchange. p. 187–199, In G. P. Robertson, D. C. Colleman, C. S. Bledsoe, and P. Sollins (eds.) Soil Standard Methods for Long-term Ecological Research. Oxford University Press, New York, NY, USA.\nJohansson, E., K. A. Klemedtsson, L. Klemedtsson, and B. H. Sevensson. 2003. Nitrous oxide exchanges with the atmosphere of a constructed wetland trating wastewater. Parameters and implications for emission factors. Tellus 55B: 737–750.\nJones, B. J., Jr. 2001. Laboratory Guide for Conducting Soil Tests and Plant Analysis. CRC Press, Boca Raton, FL, USA.\nKern, J., J. Fruch, and W. J. Junk. 1996. Seasonal Denitrification in flooded and exposed sediments from the Amazon floodplain at Lago Camaleao. Microbial Ecology 32: 47–57.\nKliewer, B. A. and J. W. Guilliam. 1995. Water table management effects on denitrification and nitrous oxide evolution. Soil Science Society of America Journal 52: 1696–1701.\nKoschorreck, M. and A. Darwich. 2003. Nitrogen dynamics in seasonally flooded soils in the Amazon floodplain. Wetlands Ecology and Management 11: 317–330.\nLachat Instruments. 2000. Methods Manual. Lachat Instruments, Milwaukee, WI, USA.\nMachefert, S. E., N. B. Dise, K. W. T. Goulding, and P. G. Whitehead. 2004. Nitrous oxide emissions from two riparian ecosystems: Key controlling variables. Water Air and Soil Pollution 4: 427–436.\nMillar, N. and E. M. Baggs. 2005. Relationships between N2O emissions and water-soluble C and N contents of agroforestry residues after their additions to soil. Soil Biology and Biochememistry 37: 605–608.\nMitsch, W. J. and J. W. Day, Jr. 2006. Restoration of wetlands in the Mississippi-Ohio-Missouri (MOM) River Basin: Experience and needed research. Ecological Engineering 26: 55–69.\nMitsch, W. J., J. W. Day, Jr., J. W. Gilliam, P. M. Groffman, D. L. Hey, G. W. Randall, and N. Wang. 1999. Reducing nutrient loads, especially nitrate-nitrogen, to surface water, groundwater, and the Gulf of Mexico. Topic 5 Report for the Integrated Assessment on Hypoxia in the Gulf of Mexico. NOAA Coastal Ocean Program. Silver Spring, MD, USA, NOAA Coastal Ocean Program Decision Analysis Series No. 19.\nMitsch, W. J., J. W. Day, G. Wendell, P. M. Groffman, D. L. Hey, W. G. Randall, and N. Wang. 2001. Reducing nitrogen loading to the Gulf of Mexico from the Mississipi River Basin: Strategies to counter a persistent ecological problem. Bio-Science 51: 373–388.\nMitsch, W. J., J. W. Day Jr., L. Zhang, and R. Lane. 2005b. Nitrate-nitrogen retention by wetlands in the Mississippi River Basin. Ecological Engineering 24: 267–278.\nMitsch, W. J. and J. G. Gosselink. 2000. Wetlands. Third edition. John Wiley & Sons, New York, NY, USA.\nMitsch, W. J., N. Wang, L. Zhang, R. Deal, X. Wu, and A. Zuwerink. 2005a. Using ecological indicators in a wholeecosystem wetland experiment. p. 211–235, In S. E. Jørgensen, F -L. Xu, and R. Costanza (eds.) Handbook of Ecological Indicators for Assessment of Ecosystem Health, CRC Press, Boca Raton, FL, USA.\nMitsch, W. J. and X. Wu (eds.). 1993. Olentangy River Wetland Research Park at The Ohio State University, 1992 Annual Report. School of Natural Resources, Columbus, OH, USA.\nMitsch, W. J., X. Wu, R. W. Nairn, P. E. Weihe, N. Wang, R. Deal, and C. E. Boucher. 1998. Creating and restoring wetlands: A whole-ecosystem experiment in self-design. Bio-Science 48: 1019–1030.\nMitsch, W. J., L. Zhang, C. J. Anderson, A. Altor, and M. E. Hernandez. 2005c. Creating riverine wetlands: Ecological succession, nutrient retention, and pulsing effects. Ecological Engineering 25: 510–527.\nMosier, A. R., S. K. Mohanty, A. Bhadrachalam, and S. P. Chakravoti. 1990. Evolution of dinitrogen and nitrous oxide from the soil to the atmosphere through rice plants. Biology and Fertility of Soils 9: 61–67.\nMuller, C., R. R. Sherlock, and P. H. Williams. 1997. Mechanistic model for nitrous oxide emission and denitrification. Biology and Fertility of Soils 24: 231–238.\nNairn, R. W. 1996. Biogeochemistry of newly created riparian wetlands: evaluations of water quality changes and soil development. Ph D. Dissertation. The Ohio State University, Columbus, OH, USA.\nRegina, K., J. Silvola, and M. Pertii. 1999. 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Ecological Engineering 25: 528–541.\nUlrike, R., A. Jurrgen, R. Russow, and W. Merbach. 2004. Nitrate removal from drained and reflooded fen soils affected by soil N transformation process and plant uptake. Soil Biology and Biochemistry 36: 77–90.\nWrage, N., G. L. Velthof, M. L. van Beusichem, and O. Oenema. 2001. Role of nitrifier denitrification in the production of nitrous oxide. Soil Biology and Biochemistry 33: 1723–1732.\nYan, X., L. Du, S. Shio, and G. Xing. 2000. Nitrous oxide emission from wetland rice soil as affected by the application of controlled availability fertilizer and mid-season aeration. Biology and Fertility of Soils 32: 60–66.\nYan, X., S. Shi, L. Du, and G. Xing. 2000. Pathways of N2O emission from rice paddy soil. Soil Biology and Biochemistry 32: 437–440.\nYoshinari, T. 1990. Emissions of N2O from various environments — the use of stable isotope composition of N2O as tracer for the studies of N2O biogeochemical cycling. p. 129–144, In J. Sorensen (ed.) Denitrification in Soil and Sediment. Plenum Press, New York, NY, USA.\nYu, K. W., Z. P. Wang, W. H. Vermoesen, and P. Cleemput. 2001. Nitrous oxide and methane emissions from different soil suspensions: Effect of soil redox status. Biology and Fertility of Soils 34: 25–30.",{"VOID":1293},"10.1672\u002F0277-5212(2006)26[862:IOHPFF]2.0.CO;2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1672\u002F0277-5212(2006)26[862:IOHPFF]2.0.CO;2",[1296,1320],{"id":1297,"sortIndex":32,"researcher":28,"roles":1298,"affiliations":1299,"properties":1317,"displayName":1319,"givenName":28,"familyName":28},"1cc83ae4-2f54-49b3-be58-6075ceb04548",[1037],[1300,1308],{"id":1301,"sortIndex":32,"affiliation":1302,"properties":28},"fab56f9e-b4e5-4f58-be56-169dd9f256c6",{"id":1301,"createTime":28,"updateTime":28,"relativeEntities":1303,"slug":28,"properties":1304,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1307,"statistic":28},[],{"title":1305},{"VI":1306},"Environmental Science Graduate Program and School of Environment and Natural Resources, Schiermeier Olentangy River Wetland Research Park, The Ohio State University, Columbus, USA",[],{"id":1309,"sortIndex":40,"affiliation":1310,"properties":1316},"372f58d0-4e84-4547-b735-c5d0bc542734",{"id":1309,"createTime":28,"updateTime":28,"relativeEntities":1311,"slug":28,"properties":1312,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1315,"statistic":28},[],{"title":1313},{"VI":1314},"Institute of Ecology, Veracruz, Mexico",[],{},{"title":1318},{"VI":1319},"Maria E. Hernandez",{"id":1321,"sortIndex":40,"researcher":28,"roles":1322,"affiliations":1323,"properties":1337,"displayName":1339,"givenName":28,"familyName":28},"ddf463ec-d967-49ad-b1a8-6c519e68021f",[1037],[1324,1330],{"id":1301,"sortIndex":32,"affiliation":1325,"properties":28},{"id":1301,"createTime":28,"updateTime":28,"relativeEntities":1326,"slug":28,"properties":1327,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1329,"statistic":28},[],{"title":1328},{"VI":1306},[],{"id":1309,"sortIndex":40,"affiliation":1331,"properties":1336},{"id":1309,"createTime":28,"updateTime":28,"relativeEntities":1332,"slug":28,"properties":1333,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1335,"statistic":28},[],{"title":1334},{"VI":1314},[],{},{"title":1338},{"VI":1339},"William J. Mitsch",{"url":1294,"publisher":1341,"properties":1389},{"id":868,"createTime":869,"updateTime":870,"relativeEntities":1342,"slug":872,"properties":1343,"entityType":25,"verifyStatus":877,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":32,"subjectFields":1346,"manageAffiliations":1358,"indexDatabases":1369,"url":28,"thumbnailPath":28,"statistic":1384,"gsStatistic":28,"type":55,"analyzePriority":28},[],{"issn":1344,"title":1345},{"VOID":875},{"EN":872},[1347,1350,1354],{"id":880,"createTime":28,"updateTime":28,"relativeEntities":1348,"label":1349,"description":28,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":883},{"id":885,"createTime":28,"updateTime":28,"relativeEntities":1351,"label":1352,"description":1353,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":888},{},{"id":891,"createTime":28,"updateTime":28,"relativeEntities":1355,"label":1356,"description":1357,"parentId":28,"standard":28,"scholarHubFieldId":28},[],{"EN":894},{},[1359,1364],{"id":898,"createTime":28,"updateTime":28,"relativeEntities":1360,"slug":28,"properties":1361,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1363,"statistic":28},[],{"title":1362},{"EN":902},[],{"id":905,"createTime":28,"updateTime":28,"relativeEntities":1365,"slug":28,"properties":1366,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1368,"statistic":28},[],{"title":1367},{"EN":909},[911],[1370,1377],{"id":914,"indexDatabase":1371,"url":920,"indexYears":921,"academicFieldIds":1376,"indexDatabaseRanking":926},{"id":775,"createTime":28,"updateTime":28,"relativeEntities":1372,"label":1373,"description":1374,"key":781,"publicationTags":1375,"standard":28},[],{"EN":778,"VI":778},{"EN":778,"VI":780},[783],[923,924,925],{"id":928,"indexDatabase":1378,"url":940,"indexYears":28,"academicFieldIds":1383,"indexDatabaseRanking":28},{"id":930,"createTime":28,"updateTime":28,"relativeEntities":1379,"label":1380,"description":1381,"key":937,"publicationTags":1382,"standard":28},[],{"EN":933,"VI":933},{"EN":935,"VI":936},[939,813],[942,943],{"impactFactor":32,"impactFactorByYear":1385,"i10Index":947,"i10IndexLast5Year":146,"totalPublication":948,"totalPublicationByYear":1386,"totalCitation":955,"totalCitationByYear":1387,"totalCitationPerPublication":984,"totalCitationPerPublicationByYear":1388,"hindexLast5Year":689,"hindex":689},{"2012":229,"2013":946,"2014":289,"2015":169,"2016":461,"2017":696,"2018":320,"2019":946,"2020":284,"2021":289,"2022":696,"2023":170},{"1981":126,"1982":146,"1983":205,"1984":205,"1985":205,"1986":42,"1987":48,"1988":145,"1989":127,"1990":146,"1991":140,"1992":135,"1993":135,"1994":131,"1995":133,"1996":150,"1997":201,"1998":141,"1999":567,"2000":141,"2001":196,"2002":280,"2003":162,"2004":516,"2005":160,"2006":332,"2007":158,"2008":158,"2009":950,"2010":332,"2011":951,"2012":826,"2013":952,"2014":207,"2015":826,"2016":565,"2017":950,"2018":950,"2019":953,"2020":954,"2021":358,"2022":826,"2023":161,"2024":133},{"1981":42,"1982":148,"1983":40,"1984":133,"1985":46,"1988":357,"1989":196,"1990":126,"1991":957,"1992":218,"1993":958,"1994":959,"1995":960,"1996":961,"1997":962,"1998":963,"1999":964,"2000":965,"2001":966,"2002":967,"2003":968,"2004":969,"2005":970,"2006":971,"2007":972,"2008":973,"2009":974,"2010":975,"2011":976,"2012":977,"2013":978,"2014":979,"2015":980,"2016":981,"2017":982,"2018":983,"2019":960,"2020":608,"2021":690,"2022":434,"2023":323,"2024":123},{"1981":168,"1982":986,"1983":108,"1984":987,"1985":368,"1988":230,"1989":988,"1990":989,"1991":990,"1992":991,"1993":992,"1994":993,"1995":994,"1996":995,"1997":996,"1998":997,"1999":998,"2000":999,"2001":1000,"2002":1001,"2003":1002,"2004":1003,"2005":1004,"2006":1005,"2007":1006,"2008":998,"2009":846,"2010":1007,"2011":1008,"2012":1009,"2013":1010,"2014":630,"2015":590,"2016":337,"2017":443,"2018":378,"2019":1011,"2020":1012,"2021":1013,"2022":424,"2023":113,"2024":112},{"pages":1390,"volume":1392},{"VOID":1391},"862-877",{"VOID":1393},"26","2006-09-01",2006,[939,926],{"id":1398,"createTime":1399,"updateTime":1400,"relativeEntities":1401,"slug":1402,"properties":1403,"entityType":1031,"verifyStatus":26,"verifyTime":1400,"verifyNote":1167,"languages":28,"translateLanguages":28,"viewCount":32,"primaryUrl":1412,"fullTextUrl":28,"authors":1413,"publicationType":1093,"publisherRelationship":1500,"citationCount":28,"citationInfo":28,"publishDate":1554,"publishYear":1555,"citationAnalyzeStatus":877,"lastCitationAnalyze":28,"indexDatabases":1556,"openAccess":28,"references":28,"isForceReanalyzing":1151},"00e38c16-0e22-4e26-a282-d3ead8f19c90","2024-02-18T09:16:51.360+00:00","2025-01-26T18:13:22.803+00:00",[],"Diet-of-the-Mud-Flat-Crab-Helice-tientsinensis-in-a-Korean-Salt-Marsh",{"abstract":1404,"title":1406,"references":1408,"doi":1410},{"EN":1405},"Crabs live at high densities in intertidal zones with various halophytes in salt marshes. However, the ecological relationships between crabs and halophytes as well as the impacts of herbivorous crabs on the plant distribution are not fully understood. In this study, we identified halophytic plant species consumed by crabs and determined the relative contributions of halophytes and other food sources to the diet. A DNA analysis of stomach contents was used to determine plant food sources for crabs. We found that the dominant crab species Helice tientsinensis consumed Suaeda japonica, even though several halophytes inhabited the study site. These results indicated that H. tientsinensis is a selective feeder. Based on a stable isotope analysis, we observed a dietary shift during crab development. Immature individuals mainly ate soil organic matter, whereas mature individuals showed more diverse food sources. We observed greater plant (S. japonica) consumption by middle-sized crabs than by crabs of other sizes. Our results for the feeding relationship between crabs and plants extend our understanding of the benthic food web in salt marshes.",{"EN":1407},"Diet of the Mud-Flat Crab Helice tientsinensis in a Korean Salt Marsh",{"VOID":1409},"Alberti J, Escapa M, Daleo P, Iribarne O, Silliman BR, Bertness M (2007) Local and geographic variation in grazing intensity by herbivorous crabs in SW Atlantic salt marshes. Marine Ecology Progress Series 349:235–243\nAlberti J, Casariego AM, Daleo P, Fanjul E, Silliman B, Bertness M, Iribarne O (2010) Abiotic stress mediates top-down and bottom-up control in a southwestern Atlantic salt marsh. Oecologia 163(1):181–191\nAlberti J, Daleo P, Fanjul E, Escapa M, Botto F, Iribarne O (2015) Can a single species challenge paradigms of salt marsh functioning? Estuaries and Coasts 38(4):1178–1188\nBaek YH (2014) The crabs of Korea (in tidal flats). 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Hydrobiology of the Mangal:89–109\nJoo S, Han D, Lee EJ, Park S (2014) Use of length heterogeneity polymerase chain reaction (LH-PCR) as non-invasive approach for dietary analysis of Svalbard reindeer, Rangifer tarandus platyrhynchus. PLoS One 9(3):e91552\nKang S, Choi B, Han Y, Shin KH (2016) Ecological importance of benthic microalgae in the intertidal mud flat of Yeongheung Island; application of stable isotope analysis (SIA). Korean Journal of Ecology and Environment 49:80–88\nKennedy P, Kennedy H, Papadimitriou S (2005) The effect of acidification on the determination of organic carbon, total nitrogen and their stable isotopic composition in algae and marine sediment. Rapid Communications in Mass Spectrometry 19(8):1063–1068\nKim MS, Lee WS, Suresh Kumar K, Shin KH, Robarge W, Kim M, Lee SR (2016) Effects of HCl pretreatment, drying, and storage on the stable isotope ratios of soil and sediment samples. Rapid Communications in Mass Spectrometry 30(13):1567–1575\nLayman CA, Arrington DA, Montaña CG, Post DM (2007) Can stable isotope ratios provide for community-wide measures of trophic structure? Ecology 88(1):42–48\nMao Z, Gu X, Zeng Q (2016) Food sources and trophic relationships of three decapod crustaceans: insights from gut contents and stable isotope analyses. Aquaculture Research 47(9):2888–2898\nMartinetto P, Montemayor DI, Alberti J, Costa CS, Iribarne O (2016) Crab bioturbation and herbivory may account for variability in carbon sequestration and stocks in south West Atlantic salt marshes. Frontiers in Marine Science 3:122\nMazumder D, Johansen MP, Fry B, Davis E (2018) Muscle and carapace tissue–diet isotope discrimination factors for the freshwater crayfish Cherax destructor. Marine and Freshwater Research 69(1):56–65\nMcCraith BJ, Gardner LR, Wethey DS, Moore WS (2003) The effect of fiddler crab burrowing on sediment mixing and radionuclide profiles along a topographic gradient in a southeastern salt marsh. Journal of Marine Research 61(3):359–390\nMicheli F (1993) Feeding ecology of mangrove crabs in north eastern Australia: mangrove litter onsumption by Sesarma messa and Sesarma smithii. Journal of Experimental Marine Biology and Ecology 171(2):165–186\nMidwood AJ, Boutton TW (1998) Soil carbonate decomposition by acid has little effect on δ13C of organic matter. Soil Biology and Biochemistry 30(10–11):1301–1307\nPeterson BJ (1999) Stable isotopes as tracers of organic matter input and transfer in benthic food webs: a review. Acta Oecologica 20(4):479–487\nPeterson BJ, Fry B (1987) Stable isotopes in ecosystem studies. Annual Review of Ecology and Systematics 18(1):293–320\nPost DM (2002) Using stable isotopes to estimate trophic position: models, methods, and assumptions. Ecology 83(3):703–718\nQin H, Chu T, Xu W, Lei G, Chen Z, Quan W, Chen J, Wu J (2010) Effects of invasive cordgrass on crab distributions and diets in a Chinese salt marsh. Marine Ecology Progress Series 415:177–187\nR Core Team (2017) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria\nRobertson AI (1986) Leaf-burying crabs: their influence on energy flow and export from mixed mangrove forests (Rhizophora spp.) in northeastern Australia. Journal of Experimental Marine Biology and Ecology 102(2–3):237–248\nSlim FJ, Hemminga MA, Ochieng C, Jannink NT, De La Moriniere EC, Van der Velde G (1997) Leaf litter removal by the snail Terebralia palustris (Linnaeus) and sesarmid crabs in an east African mangrove forest (Gazi Bay, Kenya). 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Oecologia 136(2):169–182\nWells JT, Adams CE, Park YA, Frankenberg EW (1990) Morphology, sedimentology and tidal channel processes on a high-tide-range mudflat, west coast of South Korea. Marine Geology 95(2):111–130\nYokoyama H, Tamaki A, Harada K, Shimoda K, Koyama K, Ishihi Y (2005) Variability of diet-tissue isotopic fractionation in estuarine macrobenthos. Marine Ecology Progress Series 296:115–128",{"VOID":1411},"10.1007\u002Fs13157-019-01193-4","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13157-019-01193-4",[1414,1429,1444,1457,1472,1487],{"id":1415,"sortIndex":32,"researcher":28,"roles":1416,"affiliations":1417,"properties":1426,"displayName":1428,"givenName":28,"familyName":28},"ad0a77b4-80cf-4552-9f3b-61f345168726",[1037],[1418],{"id":1419,"sortIndex":32,"affiliation":1420,"properties":28},"0f2ceb7f-0884-4e93-8282-fd52e6984345",{"id":1419,"createTime":28,"updateTime":28,"relativeEntities":1421,"slug":28,"properties":1422,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1425,"statistic":28},[],{"title":1423},{"VI":1424},"School of Biological Sciences, Seoul National University, Seoul, Republic of Korea",[],{"title":1427},{"VI":1428},"Jeong Hwan 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ecoregions along the southern edge of the Boreal Plains have experienced rapid and extensive agricultural encroachment over the last 60 years. Over 200 wetlands and shallow lakes in central and northern Alberta and northeastern British Columbia, Canada were surveyed along an agricultural encroachment gradient to investigate the effect of land use on water quality between 2005 and 2007. Study wetlands were typically small (median 29.8 ha), shallow (median 0.8 m) and highly eutrophic (median 148 μgTP∙L−1). Wetlands in the southern Boreal Plains were regionally variable and dynamic. Drought in 2006 caused significant increases in TP, TN, chlorophyll a (chla), conductivity, silica and significant decreases in maximum depth and light penetration. Increased agricultural activity within a 1.6 km buffer surrounding wetlands enhanced nutrients but not chla concentrations or submersed aquatic vegetation (SAV) coverage. Wetlands with higher amounts of agriculture in the buffer zone tended to be shallower with decreased secchi depths. Due to shallow depths, SAV thrived even under hypereutrophic conditions with high agricultural encroachment in the buffer zone. Our study suggests that SAV has a significant role in maintaining clear water states in Boreal Transition Zone wetlands and shallow lakes through its ability to suppress concentrations of chla and TP.",{"EN":1565},"Effects of Agricultural Encroachment and Drought on Wetlands and Shallow Lakes in the Boreal Transition Zone of Canada",{"VOID":1567},"Bayley S, Prather C (2003) Do wetland lakes exhibit alternative stable states? Submersed aquatic vegetation and chlorophyll in western boreal shallow lakes. Limnol Oceanogr 48:2335–2345\nBayley S, Creed I, Sass G, Wong A (2007) Frequent regime shifts in trophic states in shallow lakes on the Boreal Plain: alternative “unstable” states? Limnol Oceanogr 52:2002–2012\nBlindow I (1992) Long-term and short-term dynamics of submerged macrophytes in 2 shallow eutrophic lakes. Freshw Biol 28:15–27\nBurnham KP, Anderson DR (2002) Model selection and multi-model inference: a practical information-theoretic approach. Springer, NY\nCanfield DE, Langeland KA, Linda SB, Haller WT (1985) Relations between water transparency and maximum depth of macrophyte colonization in lakes. J Aquat Plant Manag 23:25–28\nCarpenter S, Caraco N, Correll D, Howarth R, Sharpley A, Smith V (1998) Nonpoint pollution of surface waters with phosphorus and nitrogen. Ecol Appl 8:559–568\nCrawley MJ (2007) The R book. Wiley, Chichester\nDahl TE, Watmough MD (2007) Current approaches to wetland status and trends monitoring in prairie Canada and the continental United States of America. Can J Remote Sens 33:S17–S27\nDetenbeck NE, Elonen CM, Taylor DL, Cotter AM, Puglisi FA, Sanville WD (2002) Effects of agricultural activities and best management practices on water quality of seasonal prairie pothole wetlands. Wetl Ecol Manag 10:335–354\nDevito K, Creed I, Fraser C (2005a) Controls on runoff from a partially harvested aspen-forested headwater catchment, Boreal Plain, Canada. Hyrdol Process 19:3–25\nDevito K, Creed I, Gan T, Mendoza C, Petrone R, Silins U, Smerdon B (2005b) A framework for broad-scale classification of hydrologic response units on the Boreal Plain: is topography the last thing to consider? Hydrol Process 19:1705–1714\nDierberg F, DeBusk T, Jackson S, Chimney M, Pietro K (2002) Submerged aquatic vegetation-based treatment wetlands for removing phosphorus from agricultural runoff: response to hydraulic and nutrient loading. Water Res 36:1409–1422\nEgertson C, Kopaska J, Downing J (2004) A century of change in macrophyte abundance and composition in response to agricultural eutrophication. Hydrobiologia 524:145–156\nEnvironment Canada (2007) National Climate Data Archives for Grande Prairie, Alberta. http:\u002F\u002Fwww.climate.weatheroffice.gc.ca\u002FclimateData\u002Fcanada_e.html\nEvans JC, Prepas EE (1996) Potential effects of climate change on ion chemistry and phytoplankton communities in prairie saline lakes. Limnol Oceanogr 41:1063–1076\nFerone J, Devito K (2004) Shallow groundwater-surface water interactions in pond-peatland complexes along a Boreal Plains topographic gradient. J Hydrol 292:75–95\nFitzsimmons M (2002) Estimated rates of deforestation in two boreal landscapes in central Saskatchewan, Canada. Can J For Res 32:843–851\nGonzalez Sagrario M, Jeppesen E, Goma J, Sondergaard M, Jensen J, Lauridsen T, Landkildehus F (2005) Does high nitrogen loading prevent clear-water conditions in shallow lakes at moderately high phosphorus concentrations? Freshw Biol 50:27–41\nGovernment of Canada, Agriculture and Agri-Food Canada, Prairie Farm Rehabilitation Administration (2001) PFRA Generalized landcover for the Canadian Prairies. Dataset release date June 7, 2001\nHamon W (1961) Estimating potential evapotranspiration. Proc Am Soc Civ Eng 87:107–120\nHarmel RD, Potter S, Casebolt P, Reckhow K, Green CH, Haney RL (2006) Compilation of measured nutrient load data for agricultural land uses in the US. J Am Water Resour Assoc 42:1163–1178\nHilt S, Gross E (2008) Can allelopathically active submerged macrophytes stabilize clear-water states in shallow lakes? Basic Appl Ecol 9:422–432\nHobson K, Bayne E, Van Wilgenburg SL (2002) Large-scale conversion of forest to agriculture in the Boreal Plains of Saskatchewan. Conserv Biol 16:1530–1541\nHothorn T, Bretz F, Westfall P, Heiberger R, Schuetzenmeister A (2008) multcomp: Simultaneous inference in general parametric models. Biom J 50:346–363\nHoulahan J, Findlay C (2004) Estimating the “critical” distance at which adjacent land-use degrades wetland water and sediment quality. Landsc Ecol 19:677–690\nJackson L (2003) Macrophyte-dominated and turbid states of shallow lakes: evidence from Alberta Lakes. Ecosystems 6:213–223\nJeppesen E, Jensen JP, Jensen C et al (2003) The impact of nutrient state and lake depth on top-down control in the pelagic zone of lakes: a study of 466 lakes from the temperate zone to the Arctic. Ecosystems 6:313–325\nKosten S, Kamarainen A, Jeppesen E et al (2009) Climate-related differences in the dominance of submerged macrophytes in shallow lakes. Glob Chang Biol 15:2503–2517\nKratz T, Webster K, Bowser C, Magnuson J, Benson B (1997) The influence of landscape position on lakes in northern Wisconsin. Freshw Biol 37:209–217\nMacrae M, Redding T, Creed I, Bell W, Devito K (2005) Soil, surface water and ground water phosphorus relationships in a partially harvested Boreal Plain aspen catchment. For Ecol Manag 206:315–329\nMazerolle MJ (2011) AICcmodavg: model selection and multimodel inference based on (Q)AIC(c). http:\u002F\u002FCRAN.R-project.org\u002Fpackage=AICcmodavg\nMjelde M, Faafeng B (1997) Ceratophyllum demersum hampers phytoplankton development in some small Norwegian lakes over a wide range of phosphorus concentrations and geographical latitude. Freshw Biol 37:355–365\nNational Wetlands Working Group (1997) The Canadian Wetland Classification System, 2nd edition, Warner BG, Rubec CDA (eds.), Wetlands Research Centre, University of Waterloo, Waterloo, ON, Canada\nNeely R, Baker J (1989) Nitrogen and phosphorus dynamics and the fate of agricultural runoff. In: Northern Prairie Wetlands. Iowa State University Press, Ames, Iowa, USA, pp 92–131\nNorlin J, Bayley S, Ross L (2005) Submerged macrophytes, zooplankton and the predominance of low- over high-chlorophyll states in western boreal, shallow-water wetlands. Freshw Biol 50:868–881\nPinheiro J, Bates D, DebRoy S, Sarkar D, R Development Core Team (2011) nlme: linear and nonlinear mixed effects models. R package version 3.1-102\nPrepas E, Planas D, Gibson J et al (2001) Landscape variables influencing nutrients and phytoplankton communities in Boreal Plain lakes of northern Alberta: a comparison of wetland- and upland-dominated catchments. Can J Fish Aquat Sci 58:1286–1299\nR Development Core Team (2008) R: a language and environment for statistical computing. Vienna, Austria. http:\u002F\u002Fwww.R-project.org\nRedding T, Devito K (2011) Aspect and soil textural controls on snowmelt runoff on forested Boreal Plain hillslopes. Hydrol Res 42:250–267\nScheffer M, Hosper S, Meijer M, Moss B, Jeppsen E (1993) Alternative equilibria in shallow lakes. Trends Ecol Evol 8:275–279\nSchindler D (2006) Recent advances in the understanding and management of eutrophication. Limnol Oceanogr 51:356–363\nSchindler D, Donahue W (2006) An impending water crisis in Canada’s western prairie provinces. Proc Natl Acad Sci U S A 103:7210–7216\nSkagen S, Melcher C, Haukos D (2008) Reducing sedimentation of depressional wetlands in agricultural landscapes. Wetlands 28:594–604\nTurner B, Hochbaum G, Caswell F, Neiman D (1987) Agricultural impacts on wetland habitats on the Canadian Prairies 1981–85. Transactions of the North American Wildlife and Natural Resources Conference: 206–215\nvan der Kamp G, Hayashi M, Gallen D (2003) Comparing the hydrology of grassed and cultivated catchments in the semi-arid Canadian prairies. Hydrol Process 17:559–575\nVerhoeven J, Arheimer B, Yin C, Hefting M (2006) Regional and global concerns over wetlands and water quality. Trends Ecol Evol 21:96–103\nWaiser MJ, Robarts RD (1995) Microbial nutrient limitation in prairie saline lakes with high sulfate concentration. Limnol Oceanogr 40:566–574\nWatmough, M, Ingstrup D, Duncan D, Schinke H (2002) Prairie Habitat Joint Venture habitat monitoring program. Phase 1: Recent habitat trends. Canadian Wildlife Service, Edmonton, Alberta, Canada\nWatmough M, Schmoll M (2007) Environment Canada’s Prairie and Northern Region Habitat Monitoring Program Phase II: recent habitat trends in the Prairie Habitat Joint Venture. Environment Canada, Canadian Wildlife Service, Edmonton\nWhigham D, Jordan T (2003) Isolated wetlands and water quality. Wetlands 23:541–549\nZedler J, Kercher S (2005) Wetland resources: status, trends, ecosystem services, and restorability. In: Annual Review of Environment and Resources. Annual Reviews, Palo Alto, pp 39–74\nZimmer K, Hanson M, Butler MG (2001) Effects of fathead minnow colonization and removal on a prairie wetland ecosystem. Ecosystems 4:346–357\nZimmer K, Hanson M, Herwig B, Konsti M (2009) Thresholds and stability of alternative regimes in shallow prairie-parkland lakes of central North America. 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merous landscape depressions on the High Lava Plain of southeast Oregon, USA are ponded in most years, but their wetland status has not been examined closely. We applied the standard wetland criteria (hydrology, soils, and vegetation) to one such pool to evaluate whether the pool meets federal criteria as a jurisdictional wetland. Wetland hydrology was determined to be present based on data from piezometer and ponding observations. Soils were determined to be hydric based on hydrology, soil temperature, and redox potentials. Vegetation met wetland criteria according to the 50\u002F20 rule. Vegetation was similar to that of California Northern Basalt Flow vernal pools. Oregon pools are locally called “upland playas,” but they fit the definition of vernal pools. Many southeast Oregon vernal pools are dug out as waterholes for livestock, increasing ponding depth and duration. Increased water availability can alter biological communities within pools and on surrounding semi-arid uplands. Effects due to grazing and excrement inputs have not yet been investigated. Vernal pools constitute distinct habitat sites within semi-arid landscapes and, therefore, probably play an important, and so far poorly understood, ecological role on the southeast Oregon steppe.",{"EN":1682},"Wetland determination of a southeast Oregon vernal pool and management implications",{"VOID":1684},"Austin, W. 1994. Duration of saturation and redox potentials in selected Willamette Valley soils. M. S. Thesis. Oregon State University, Corvallis, OR, USA.\nAustin, W. and J. H. Huddleston. 1999. Viability of permanently installed platinum redox electrodes. Soil Science Society of America Journal 63:1757–1762.\nBarry, S. J. 1995. Vernal pools on California’s annual grasslands. Rangelands 17:173–175.\nBarry, S. J. 1996. Managing the Sacramento Valley vernal pool landscape to sustain the native flora. p. 236–240. In C.W. Witham, E.T. Bauder, D. Belk, W.R. Ferren Jr., and R. Ornduff (eds.) Ecology, Conservation, and Management of Vernal Pool Ecosystems—Proceedings from a 1996 Conference. California Native Plant Society, Sacramento, CA, USA.\nBonham, C. D. 1989. Measurements for Terrestrial Vegetation. John Wiley and Sons, New York, NY, USA.\nBureau of Land Management. 2000. Harney County Soil Survey. Bureau of Land Management-U. S. Department of Agriculture, Washington, DC, USA.\nBurnham, K. P., D. R. Anderson, and J. L. Laake. 1980. Estimation of density from line transect sampling of biological populations. Wildlife Monographs 72:47–56.\nCanfield, R. H. 1941. Application of the line interception method in sampling range vegetation. Journal of Forestry 39:388–394.\nCrocker, R. L. and N. S. Tiver. 1948. Survey methods in grassland ecology. Journal of the British Grassland Society 3:1–26.\nCronquist, A. 1994. Vascular Plants of the Intermountain West, USA; vol. 5, Asterales. The New York Botanical Garden, Bronx, NY, USA.\nEnvironmental Laboratory. 1987. Corps of Engineers wetland delineation manual. U.S. Army Engineer Waterways Experiment Station. Vicksburg, MS, USA. Technical Report Y-87-1.\nFederal Register. 1982. Title 33: Navigation and navigable waters: Chapter 2. Regulatory Programs of the Corps of Engineers. U.S. Government Printing Office, Washington, DC, USA. Report 47(138), 31, 810.\nFederal Register. 1994. Changes in hydric soils of the United States. U.S. Government Printing Office, Washington, DC, USA.\nFranklin, J. F. and C. T. Dyrness. 1988. Natural Vegetation of Oregon and Washington. Oregon State University Press, Corvallis, OR, USA.\nFusco, M., J. Holechek, A. Tembo, A. Daniel, and M. Cardenas. 1995. Grazing influences on watering point vegetation in the Chihuahuan desert. Journal of Range Management 48:32–38.\nGambrell, R. P. and W. H. Patrick Jr. 1978. Chemical and microbiological properties of anaerobic soils and sediments. p. 375–423. In D. D. Hook and R. M. M. Crawford (eds.) Plant Life in Anaerobic Environments. Ann Arbor Science Publishers Inc., Ann Arbor, MI, USA.\nGraham, T. B. 1997. Climate change and ephemeral pool ecosystems: potholes and vernal pools as potential indicator systems. Impacts of Climate Change and Land Use in the Southwestern United States. U. S. Geological Survey Global Change web page: http:\u002F\u002Fwww.usgs.gov\u002Fsw\u002F.\nHanes, W. T., B. Hecht, and L. P. Stromberg. 1990. Water relationships of vernal pools in the Sacramento region, California. p. 49–60. In D. H. Ikeda and R. A. Schlising (eds.). Vernal Pool Plants-Their Habitat and Biology. California State University, Chico, CA, USA. Studies from the Herbarium No. 8.\nHolland, R. F. 1976. The vegetation of vernal pools: a survey. p. 11–15. In S. Jain (ed.) Vernal Pools: Their Ecology and Conservation. University of California, Davis, CA, USA. Institute of Ecology Publication No. 9.\nHolland, R. F. and S. K. Jain. 1977. Vernal pools. p. 258–290. In M. G. Barbour and J. Major (eds.), Terrestrial Vegetation of California. Wiley-Interscience, New York, NY, USA.\nInternational Organization for Plant Information. 1997. International Union of Biological Sciences Global Plant Checklist web page: http:\u002F\u002Fiopi.scu.edu.au\u002F.\nKeeler-Wolf, T., D. Elam, K. Lewis, and S. Flint. 1998. California vernal pool assessment preliminary report. California Department of Fish and Game Wetlands Inventory and Conservation Unit web page: http:\u002F\u002Fmaphost.dfh.ca.gov\u002Fwetlands.\nLandsberg, J., C. James, S. Morton, T. Hobbs, J. Stol, A. Drew, and H. Tongway. 1997. The effects of artificial sources of water on rangeland biodiversity. Final report to the Biodiversity Convention and Strategy Section, Environment Australia Biodiversity Group, CSIRO Wildlife and Ecology, Commonwealth of Australia. http: \u002F\u002Fwww.environment.gov.au\u002Fbg\u002Fchm\u002Fbiocon\u002Fartwater\u002Findex.htm\nLudwig, J., R. Eager, R. Williams, and L. Lowe. 1999. Declines in vegetation patches, plant diversity, and grasshopper diversity near cattle watering-points in the Victoria River District, Northern Australia. Rangeland Journal 21:135–149.\nMozingo, H. 1987. Shrubs of the Great Basin: a Natural History. University of Nevada Press, Reno, NV, USA.\nMunz, P. A. 1959. A California Flora. University of California Press, Berkeley, CA, USA.\nNational Research Council. 1995. Wetlands: Characteristics and boundaries. National Academy Press. Washington, DC, USA.\nNational Wetlands Inventory. 1982. Map of Palomino Buttes, Oregon. U. S. Fish and Wildlife Service-U.S. Department of the Interior, Washington, DC, USA.\nPieper, R. D. 1973. Measurement Techniques for Herbaceous and Shrubby Vegetation. New Mexico State University. Las Cruces, NM, USA.\nReed, R. T. 1988. National List of Plant Species that Occur in Wetlands: 1988 National Summary. U. S. Fish and Wildlife Service-U. S. Department of the Interior, Washington, DC, USA. Biological Report 88(24).\nReed, R. T. 1996. Draft Revision of National List of Plant Species that Occur in Wetlands. U. S. Fish and Wildlife Service-U. S. Department of the Interior, Washington, DC, USA. Biological Report 88(24).\nRogers, R. W. and R. T. Lange. 1971. Lichen populations on arid soil crusts around sheep watering places in South Australia. Oikos 22:93–102.\nRoth, A. H. and J. F. Jackson. 1987. The effect of pool size on recruitment of predatory insects and on mortality in a larval anuran. Herpetologica 43:224–232.\nSawyer, J. O. and T. Keeler-Wolf. 1995. A Manual of California Vegetation. California Native Plant Society, Sacramento, CA, USA.\nSkinner, M. W. and B. M. Pavlik. 1994. Inventory of rare and endangered vascular plants of California. California Native Plant Society, Sacramento, CA. Special Publication No. 1, 5th edition.\nSoil Survey Staff. 1975. Soil Taxonomy: a basic system of soil classification for making and interpreting soil surveys. Soil Conservation Service, Washington, DC, USA. USDA Agriculture Handbook No. 436.\nSposito, G. 1989. The Chemistry of Soils. Oxford University Press, New York, NY, USA.\nStone, R. D. 1990. California’s endemic vernal pool plants: some factors influencing their rarity and endangerment. p. 89–108. In D. H. Ikeda and R. A. Schlising (eds.) Vernal Pool Plants-Their Habitat and Biology. California State University, Chico, CA, USA. Studies from the Herbarium No. 8.\nThorne, R. F. 1981. Are California’s vernal pools unique? p. 128–142. In S. Jain and P. Moyle (eds.) Vernal Pools and Intermittent Streams. The Institute of Ecology, University of California, Davis, CA, USA. Institute of Ecology Publication No. 28.\nTiner, R. W. 1999. Wetland Indicators: a Guide to Wetland Identification, Delineation, Classification, and Mapping. Lewis Publishers, CRC Press, Boca Raton, FL, USA.\nTurner, M. D. 1998. Long-term effects of daily grazing orbits on nutrient availability in Sahelian West Africa: 1. Gradients in the chemical composition of rangeland soils and vegetation. Journal of Biogeography 25:669–682.\nU. S.D. A.-N.R.C.S. Soil Survey Division. 2002. Hydric soils of the United States. U.S. Department of Agriculture-Natural Resources Conservation Service. Washington, DC, USA. www.statlab.iastate.edu\nVepraskas, M. J. 1996. Redoximorphic features for identifying aquic conditions. Technical Bulletin 301. North Carolina Agricultural Research Service, Raleigh.\nWalker, G. W. 1979. Revisions to the Cenozoic stratigraphy of Harney Basin, southeastern Oregon. U. S. Geological Survey, Washington, DC, USA. Geological Survey Bulletin 1475.\nWeir, J. S. 1971. The effect of creating additional water supplies in a central African National Park. p. 367–376. In E. Duffey and A. S. Watt (eds.) The Scientific Management of Animal and Plant Communities for Conservation. Blackwell Scientific, London, UK.\nWinward, A. H. 1980. Taxonomy and ecology of sagebrush in Oregon. Agricultural Experiment Station, Oregon State University, Corvallis, OR, USA. Station Bulletin 642.\nZedler, P. H. 1987. The ecology of southern California vernal pools: a community profile. National Wetlands Research Center, U. S. Department of the Interior, Washington, DC, USA. Biological Report 85(7.00).",{"VOID":1686},"10.1672\u002F0277-5212(2002)022[0677:WDOASO]2.0.CO;2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1672\u002F0277-5212(2002)022[0677:WDOASO]2.0.CO;2",[1689,1704],{"id":1690,"sortIndex":32,"researcher":28,"roles":1691,"affiliations":1692,"properties":1701,"displayName":1703,"givenName":28,"familyName":28},"dbf9a67a-d4cc-4eb7-b5a1-e2df5832cd76",[1037],[1693],{"id":1694,"sortIndex":32,"affiliation":1695,"properties":28},"36184176-5ef9-41c2-8bd7-8bece40e84d2",{"id":1694,"createTime":28,"updateTime":28,"relativeEntities":1696,"slug":28,"properties":1697,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1700,"statistic":28},[],{"title":1698},{"VI":1699},"U.S. Geological Survey, Corvallis, USA",[],{"title":1702},{"VI":1703},"David Clausnitzer",{"id":1705,"sortIndex":40,"researcher":28,"roles":1706,"affiliations":1707,"properties":1716,"displayName":1718,"givenName":28,"familyName":28},"0dee9dfb-b3d5-4ac1-ac51-92cd934757c4",[1037],[1708],{"id":1709,"sortIndex":32,"affiliation":1710,"properties":28},"518f1d24-cc7a-47fd-bf34-71ed315d4ef9",{"id":1709,"createTime":28,"updateTime":28,"relativeEntities":1711,"slug":28,"properties":1712,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1715,"statistic":28},[],{"title":1713},{"VI":1714},"Department of Crop and Soil Sciences, Oregon State University, Corvallis, USA",[],{"title":1717},{"VI":1718},"J. 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and fluorescence properties of chromophoric dissolved organic matter (CDOM) in rivers across the Liaohe River Delta, a large estuary located in the southern region of northeast China, were investigated using spectroscopy and fluorescence to analyze CDOM characteristics, composition and sources in winter (January), spring (April and May) and autumn (September) 2013. Results indicated that CDOM absorption of ice samples was lower compared to water samples. CDOM absorption also showed significant spatial variation but not temporal variation. In contrast, dissolved organic carbon (DOC) concentrations showed obvious temporal characteristics. A stronger linear relationship was found between CDOM absorption and DOC concentration in winter (water, R\n                        2 = 0.95, p \u003C 0.001; ice, R\n                        2 = 0.85, p \u003C 0.001) compared to samples from other seasons (April, R\n                        2 = 0.51, p \u003C 0.01; May, R\n                        2 = 0.34, p \u003C 0.05; September, R\n                        2 = 0.45, p \u003C 0.01). CDOM fluorescence varied over a large range across seasons, with the highest levels observed in January at the Xisha River (XSR). Moreover, strong linear relationships were also observed between CDOM absorption and fluorescence intensity at 355 nm [Fn(355)] in January (R\n                        2 = 0.87, p \u003C 0.001), May (R\n                        2 = 0.76, p \u003C 0.001) and September (R\n                        2 = 0.94, p \u003C 0.001). Also based on study findings, CDOM fluorophores identified by 3-D excitation-emission matrices (EEMs) illustrated that the rivers across the Liaohe Delta were seriously polluted by anthropogenic disturbances, exhibiting strong protein-like fluorescence of CDOM in the water column. In addition, the results also confirm that absorption and EEMs would be useful tools for tracing the sources and characteristics of CDOM and monitoring riverine water quality.",{"EN":1784},"Seasonal Variations of CDOM Optical Properties in Rivers Across the Liaohe Delta",{"VOID":1786},"Ågren A, Buffam I, Jansson M, Laudon H (2007) Importance of seasonality and small streams for the landscape regulation of dissolved organic carbon export. Journal of Geophysical Research: Biogeosciences (2005–2012) 112(G3)\nAPHA\u002FAWWA\u002FWEF (1998) Standard methods for the examination of water and wastewater. Washington, DC\nBabin M, Stramski D, Ferrari GM, Claustre H, Bricaud A, Obolensky G, Hoepffner N (2003) Variations in the light absorption coefficients of phytoplankton, nonalgal particles, and dissolved organic matter in coastal waters around Europe. 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Estuaries and Coasts 35(2):369–382\nHu XJ, Wu H, Yang JS (2012) The simulation and prediction of environmental change of Liaohe River estuary wetland\u002F\u002FWorld Automation Congress (WAC) IEEE, 2012: 1–4\nJi GD, Sun TH, Zhou QX, Sui X, Chang SJ, Li PJ (2002) Constructed subsurface flow wetland for treating heavy oil-produced water of the Liaohe oilfield in China. Ecological Engineering 18(4):459–465\nKirk JTO (1994) Light and photosynthesis in aquatic ecosystem. Cambridge University Press, Cambridge, pp 57–71\nKowalczuk P, Cooper WJ, Whitehead RF, Durako MJ, Sheldon W (2003) Characterization of CDOM in an organic-rich river and surrounding coastal ocean in the South Atlantic Bight. Aquatic Science 65(4):384–401\nLaudon H, Köhler S, Buffam I (2004) Seasonal TOC export from seven boreal catchments in northern Sweden. Aquatic Sciences 66(2):223–230\nLaurion I, Ventura M, Catalan J, Psenner R, Sommaruga R (2000) Attenuation of ultraviolet radiation in mountain lakes: factors controlling the among- and within-lake variability. Limnology and Oceanography 45(6):1274–1288\nLi XZ, Qu XR, Wang LP, Zhang HR, Xiao DN (1999) Purification function of the natural wetland in the Liaohe Delta. Journal of Environmental Sciences 11(2):236–242\nLin T, Ye SY, Ma CL, Ding XG, Brix H, Yuan HM, Chen YJ, Guo ZG (2013) Sources and preservation of organic matter in soils of the wetlands in the Liaohe (Liao River) Delta, North China. Marine Pollution Bulletin 71:276–285\nMarkager S, Vincent WF (2000) Spectral light attenuation and absorption of UV and blue light in natural waters. Limnology and Oceanography 45(3):642–650\nMcKnight DM, Boyer EW, Westerhoff PK, Doran PT, Kulbe T, Andersen DT (2001) Spectrofluorometric characterization of dissolved organic matter for indication of precursor organic material and aromaticity. 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Journal of Dalian University of Technology 54(2):0215–0221 (in Chinese with English abstract)",{"VOID":1788},"10.1007\u002Fs13157-014-0622-2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13157-014-0622-2",[1791,1815,1828,1841,1854,1874,1887,1900],{"id":1792,"sortIndex":32,"researcher":28,"roles":1793,"affiliations":1794,"properties":1812,"displayName":1814,"givenName":28,"familyName":28},"2c33acd5-38ef-49fd-9142-acb31495f257",[1037],[1795,1803],{"id":1796,"sortIndex":32,"affiliation":1797,"properties":28},"98da865d-e5b8-4623-b449-25a30d517fcb",{"id":1796,"createTime":28,"updateTime":28,"relativeEntities":1798,"slug":28,"properties":1799,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1802,"statistic":28},[],{"title":1800},{"VI":1801},"Northeast Institute of Geography and Agroecology, Chinese Academy of Sciences, Changchun, 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125 km2 East Kolkata Wetlands (EKW) is not only the world’s largest wastewater fed aquaculture site but also a Ramsar recognized eco-diversity zone. The EKW, comprising of multiple water-bodies, interspersed with cultivable land and human settlements, came into existence in the early twentieth century from an interaction between the then newly established wastewater disposal system of the city of Kolkata and the large salt lakes that once existed in the region. The wastewater solids being let into the natural salt-water marshes transformed them into captive water-bodies by cutting them off from the tidal creeks joining the ocean. Local traders converted some of these shallow wetlands by around 1930-s into fish farming ponds fed by wastewater after appropriate treatment. Since then these water-bodies have not only provided livelihood opportunities to several marginalized groups, it has helped to meet a bulk of the city’s fish requirement. The area has also developed into a unique ecosystem sheltering a wide variety of flora which acts as a green lung to the city. For the past couple of decades, however, land encroachment for real estate has threatened the biodiversity of this region. Further, the younger generation of the farming community has largely shifted to other professions, leading to a decline in the wastewater-fed fish farming activities. The paper thus attempts to evaluate the benefits of the wetlands vis-à-vis concerns like the possible uptake of harmful elements by the fish population. The benefits, nevertheless, are seen to outweigh the disadvantages and the EKW appears to emerge as a model for a low-cost, ecologically sustainable bio-treatment plant of wastewater in an era when low-energy, low-impact developments are being vigorously promoted to counter global warming and climate change adversities.",{"EN":1980},"Evolution of the Urban Wastewater Bio-treatment and Reuse System of East Kolkata Wetlands, India: an Appraisal",{"VOID":1982},"Adhikari T, kumar (2011) Ecological studies of zooplanktonic community of wastewater wetland of east calcutta (PhD Thesis). University of Calcutta\nAich A, Chakraborty A, Sudarshan M, Chattopadhyay B, Mukhopadhyay SK (2012) Study of trace metals in Indian major carp species from wastewater-fed fishponds of East Calcutta Wetlands: Study of trace metals in Indian major carps. 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Duke University\nUnited, Nations (2018) Sustainable cities, human mobility and international migration: a concise report. UN. https:\u002F\u002Fdoi.org\u002F10.18356\u002Fa11581d8-en\nUSEPA and USAID (1992) Guidelines for water reuse (Technical Report No. EPA\u002F625\u002FR-92\u002F004). Environmental Protection Agency, Washington, DC\nVan Rooijen DJ, Turral H, Biggs W (2005) Sponge city: water balance of mega-city water use and wastewater use in Hyderabad, India. Irrigation and Drainagege 54:S81–S91. https:\u002F\u002Fdoi.org\u002F10.1002\u002Fird.188\nVazhacharickal PJ, Gangopadhyay SG (2014) Wastewater usage in urban and peri-urban agricultural production systems: scenarios from India. Future of Food Journal on Fodd Agriculture Society 2:111–133\nVeda SB (2016a) The miracle of Kolkata’s wetlands – and one man’s struggle to save them | Cities | The Guardian [WWW Document]. https:\u002F\u002Fwww.theguardian.com\u002Fcities\u002F2016\u002Fmar\u002F09\u002Fkolkata-wetlands-india-miracle-environmentalist-flood-defence. Accessed 3.22.18\nVeda SB (2016b) Are we walking in Chennai’s Footsteps? The Global Calcuttan [WWW Document]. The Global Calcuttan. http:\u002F\u002Ftheglobalcalcuttan.com\u002F?p=4539. Accessed 11.30.17\nVicziany M, Plahe J (2017) Food security and traditional knowledge in India: The Issues. South Asia: Journal of South Asian Studies 40:566–581. https:\u002F\u002Fdoi.org\u002F10.1080\u002F00856401.2017.1342181\nWHO (1989) Health guidlines for the use of wastewater in agriculture and aquaculture (Technical Report Series No. 778). World Health Organisation, Geneva",{"VOID":1984},"10.1007\u002Fs13157-021-01509-3","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13157-021-01509-3",[1987,2002],{"id":1988,"sortIndex":32,"researcher":28,"roles":1989,"affiliations":1990,"properties":1999,"displayName":2001,"givenName":28,"familyName":28},"28058c66-7f2b-48e9-b2bc-a3deccf66ebf",[1037],[1991],{"id":1992,"sortIndex":32,"affiliation":1993,"properties":28},"1a583d10-4f17-41cc-a739-8f6f73ffb1c1",{"id":1992,"createTime":28,"updateTime":28,"relativeEntities":1994,"slug":28,"properties":1995,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":1998,"statistic":28},[],{"title":1996},{"VI":1997},"School of Water Resources, Indian Institute of Technology Kharagpur, India",[],{"title":2000},{"VI":2001},"Anusha 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recent decline in wild rice (Zizania palustris) wetlands has been observed. We assessed the factors significant in understanding the distribution of Z. palustris and the surrounding macrophyte community. Sixty historic wild rice wetlands that currently display a wide range of rice densities were sampled in Wisconsin and Minnesota (USA). Chemical and physical factors and aquatic plants densities were measured. Data were analyzed using Canonical Correspondence Analysis in which the following trends were found. Wetlands that exhibited the greatest loss of Zizania tended to have higher levels of residential development within their watershed, ammonia, pH and depth. The aquatic plant community also shifted to plants that likely benefited from increases in light and pollinators. Increased agriculture was correlated with higher nutrient levels and increases with floating plants that can acquire nutrients directly from the water column. This study suggests optimal conditions for wild rice as well as the aquatic plant communities that are associated with these conditions. This paper demonstrates that Zizania (and other aquatic plants) may be very sensitive to small changes within their watershed that are typical of moderate development. Future management strategies should include consideration of these land-use patterns.",{"EN":2084},"Factors affecting the distribution of wild rice (Zizania palustris) and the associated macrophyte community",{"VOID":2086},"American Public Health Association (APHA). 1992. Standard Methods for the Examination of Water and Wastewater, 18th edition. American Public Health Association, American Water Works Association and Water Environment Federation, Washington, DC, USA.\nAmerican Society for Testing and Materials (ASTM). 1968. ASTM D516, Standard Test Methods for Sulfate in Water and Waste Water. American Society for Testing and Materials, Philadelphia, PA, USA.\nAsplund, T. R. 2000. The effects of motorized watercraft on aquatic ecosystems. Wisconsin Department of Natural Resources and University of Wisconsin, Madison, WI, USA. PUBL-SS-948-00.\nBengtsson, L. and M. Enell. 1986. Chemical analysis, p. 423–51. In B. E. Berglund (ed.) Handbook of Holocene Palaeoecology and Palaeohydrology. John Wiley & Sons Ltd, New York, NY, USA.\nCarson, T. L. 2003. The effect of sediment nutrient variation, water depth, and emergent aquatic perennials on wild rice (Zizania palustris) production. M.S. thesis. University of Minnesota, St. Paul, MN, USA.\nCrow, G. E. and C. B. Hellquist. 2000. Aquatic and Wetland Plants of Northeastern North America: a Revised and Enlarged Edition of Norman C. Fassett’s A Manual of Aquatic Plants. Vol. 2. Angiosperms: Monocotyledons. University of Wisconsin Press, Madison, WI, USA.\nDale, H. M. and G. E. Miller. 1978. Changes in the aquatic macrophyte flora of Whitewater Lake near Sudbury, Ontario Canada from 1947–1977. Canadian Field-Naturalist 92: 264–70.\nDay, W. R. and P. F. Lee. 1990. Deficiencies of wild rice grown in flocculent sediments. Journal of Aquatic Plant Management 28: 84–88.\nDore, William, G. 1969. Wild rice. Canada Department of Agriculture, Ottawa, Canada Publication Number 1393.\nFannucchi, G. T., W. A. Fannucchi, and S. Craven. 1986. Wild rice in Wisconsin: its ecology and cultivation. University of Wisconsin—Extension Publication 3372.\nFassett, NormanC. 1957. A Manual of Aquatic Plants. The University of Wisconsin Press, Madison, WI, USA.\nKeenan, T. J. and P. F. Lee. 1988. Ecological relationships of wild rice, Zizania aquatica. 7. Sediment nutrient depletion following introduction of wild rice to a shallow boreal lake. Canadian Journal of Botany 66: 236–41.\nLee, P. F. 1986. Ecological relationships of wild rice, Zizania aquatica. 4. Environmental regions within a wild rice lake. Canadian Journal of Botany 64: 2037–44.\nLee, P. F. 1987. Ecological relationships of wild rice, Zizania aquatica. 5. Enhancement of wild rice production by Potamogeton robbinsii. Canadian Journal of Botany 65: 1433–38.\nLee, P. F. 1996. The effect of heavy metals on the early growth of wild rice. Report to the Great Lakes Indian Fish & Wildlife Commission, Odanah, WI USA.\nLeps, J. and P. Smilauer. 2003. Multivariate Analysis of Ecological Data Using CANOCO. Cambridge University Press, Cambridge, UK.\nLougheed, V. L., B. Crosbie, and P. Chow-Fraser. 1998. Predictions on the effect of common carp (Cyprinus carpio) on water quality, Zooplankton, and submergent macrophytes in a great Lakes wetland. Canadian Journal of Fisheries and Aquatic Sciences 55: 1189–97.\nMeeker, J. E. 2000. Ecology of “wild” wild rice (Zizania palustris var. palustris) in the Sakagon Sloughs, a riverine wetland on Lake Superior. p. 68–84. In L. S. Williamson, L. A. Dlutkowski, and A. P. McCommon Soltis (eds.) Wild rice research and management. Great Lakes Fish and Wildlife Commission publication, Odanah, WI, USA.\nMinnesota Department of Natural Resources. 2008. Natural wild rice in Minnesota. A wild rice study document submitted to the Minnesota legislature (February 15, 2008).\nMitsch, W. J. and J. G. Gosselink. 2000. Wetlands (3rd ed.). John Wiley and Sons Inc., New York, NY, USA.\nNichols, S. A. 1990. Interspecific associations of some Wisconsin lake plants. Wisconsin Academy of Sciences, Arts and Letters 78: 111–28.\nNichols, S. A. 1992. Depth, substrate, and turbidity relationships of some Wisconsin lake plants. Wisconsin Academy of Sciences, Arts and Letters 80: 91–118.\nPillsbury, R. W. and E. A. Bergey. 2000. The effects of root mass and disturbance on wild rice (Zizania aquatica) survivorship. p. 206–214. In L. S. Williamson, L. A. Dlutkowski, and A. P. McCommon Soltis (eds.) Wild rice research and management. Great Lakes Fish and Wildlife Commission publication, Odanah, WI, USA.\nShortreed, K. S. and J. G. Stockner. 1983. Periphyton biomass and species composition in a coastal rainforest stream in British Columbia: effects of environmental changes caused by logging. Canadian Journal of Fisheries and Aquatic Sciences 40: 1887–95.\nStevenson, S. C. and P. F. Lee. 1987. Ecological relationships of wild rice, Zizania aquatica. 6. The effects of increases in water depth on vegetative and reproductive production. Canadian Journal of Botany 65: 2128–32.\nter Braak, C. J. F. and P. Smilauer. 2002. CANOCO reference manual and CanoDraw for Windows User’s guide: Software for Canonical Community Ordination (version 4.5). Microcomputer Power, Ithaca, NY, USA.\nThomas, A. G. and J. M. Stewart. 1969. The effect of different water depths on the growth of wild rice. Canadian Journal of Botany 47: 1525–31.\nTynan, T. 2000. Testing the effects of motorboats on wild rice (Zizania palustris var. interior). p. 129–205. In L. S. Williamson, L. A. Dlutkowski, and A. P. McCommon Soltis (eds.) Wild rice research and management. Great Lakes Fish and Wildlife Commission publication, Odanah, WI, USA.\nUnited States Environmental Protection Agency (USEPA). 1983. Methods for the chemical analysis of water and wastes. Cincinnati, OH, USA: Cincinnati, OH. U.S. Environmental Protection Agency, Report: EPA-600\u002F4-79-020.\nUnited States Environmental Protection Agency (USEPA). 1991. Methods for the determination of metals in environmental samples. Cincinnati, OH: U.S. Environmental Protection Agency, Report: EPA-600\u002F4-91-010.\nVennum Jr., T. 1988. Wild Rice and the Ojibway People. Minnesota Historical Society Press, St. Paul, MN, USA.\nVoss, E. G. 1972. Michigan Flora, Part I-Gymnosperma and Monocots Cranbrook Institute of Science, Bloomfield Hills, MI, USA.\nWarwick, S. I. and S. G. Aiken. 1986. Electrophoretic evidence for the recognition of two species in annual wild rice (Zizania, Poaceae). Systematic Botany 11: 464–473.",{"VOID":2088},"10.1672\u002F08-41.1","2024-12-27T20:21:56.470+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1672\u002F08-41.1",[2092,2107],{"id":2093,"sortIndex":32,"researcher":28,"roles":2094,"affiliations":2095,"properties":2104,"displayName":2106,"givenName":28,"familyName":28},"868a1d4d-dc41-4e04-a59f-041e10454eb0",[1037],[2096],{"id":2097,"sortIndex":32,"affiliation":2098,"properties":28},"4803cd7d-ba0b-4dec-ab65-c71e5e89de06",{"id":2097,"createTime":28,"updateTime":28,"relativeEntities":2099,"slug":28,"properties":2100,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2103,"statistic":28},[],{"title":2101},{"VI":2102},"Department of Biology and Microbiology, The University of Wisconsin Oshkosh, Oshkosh",[],{"title":2105},{"VI":2106},"Robert W. 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,"doi":2190},{"EN":2185},"Eggs of blueback herring (Alosa aestivalis) and other fish taxa were sampled in Mulberry Ricefield, a former impoundment, and the west branch of Cooper River, South Carolina, U.S.A. from 1 March to 27 April 1988 and from 3 March to 27 April 1989. Four taxa of fish eggs (n=60,365) were collected in 1988 and eight taxa of eggs (n=10,541) in 1989. No statistical difference (P>0.05) was detected in catch of herring eggs per unit effort (CPUE) between sampling years or collection locations. Most herring eggs were collected at open water stations within Mulberry Ricefield. These results were compared to 1981–82 CPUE values of herring eggs at the same study area. A 99.6% decline in CPUE was observed from the collection years 1981–82 to 1988–89 after the rediversion in 1985 of 75% of the water from Cooper River into Santee River. Number of taxa and eggs in the collections also declined between 1981–82 and 1988–89. Only one new taxon of fish eggs was found in post-rediversion collections.",{"EN":2187},"Impacts of water rediversion on the spawning utilization of a formerly impounded ricefield by blueback herring",{"VOID":2189},"Bulak, J. S. and T. A. Curtis. 1977. Santee-Cooper rediversion project. South Carolina Wildlife and Marine Resources Department, Columbia, SC, USA. SCR1-1.\nCarlander, K. D. 1977. Handbook of Freshwater Fishery Biology, Vol. II. Life History Data on Centrarchid Fishes of the United States and Canada. Towa State University Press. Ames, IA, USA.\nChristie, R. W., P. T. Walker, A. G. Eversole, and T. A. Curtis. 1981. Distribution of spawning blueback herring on the west branch of Cooper River and the Santee River, South Carolina. Proceedings of the Annual Conference of Southeastern Association Fish and Wildlife Agencies 35: 632–640.\nCooke, D. 1989. Santee-Cooper blueback herring studies. South Carolina Wildlife Marine Resources Department, Columbia, SC, USA. SCR 1–13.\nCurtis, T. A. 1977. Anadromous fish survey of the Santee and Cooper system. South Carolina Wildlife Marine Resources. Department, Columbia, SC, USA. AFS 307.\nDoar, D. 1936. Rice and riceplanting in South Carolina low country. Charleston Museum. Charleston, SC, USA. Contribution No. 8.\nLee, D. S., C. R. Gilbert, C. H. Hocutt, R. E. Jenkins, D. E. McAllister, and J. R. Stauffer, Jr. 1980. Atlas of North American Freshwater Fishes. North Carolina State Museum of Natural History, Raleigh, NC, USA. Publication No. 1980–12.\nLippson, A. J. and R. L. Moran. 1974. Manual for identification of early development stages of fishes of the Potomac Estuary. Power Plant Siting Program, Maryland Department of Natural Resources. Baltimore, MD, USA.\nLoesch, J. G. 1987. Overview of life history aspects of anadromous alewife and blueback herring in freshwater habitats. American Fisheries Society Symposium 1:89–103.\nLoesch, J. G. and W. A. Lund. 1977. A contribution to the life history of the blueback herring,Alosa aestivalis. Transactions of American Fisheries Society 106:583–589.\nMansueti, A. J. and J. D. Hardy, Jr. 1967. Development of fishes of the Chesapeake Bay region: An atlas of egg, larval, and juvenile stages. Natural Resources Institute. University of Maryland, College Park, MD, USA.\nMeador, M. R., A. G. Eversole, and J. S. Bulak. 1984. Utilization of portions of the Santee River system by spawning blueback herring. North American Journal of Fisheries Management 4:155–163.\nMorgan, R. P., III and R. D. Prince. 1976. Chlorine toxicity to estuarine fish eggs and larvae. Chesapeake Biological Laboratory. Solomons Island, MD, USA. UMCEES 76–116.\nMoss, S. A., W. C. Leggett, and W. A. Boyd. 1976. Recurrent mass mortalities of the blueback herring,Alosa aestivalis, in the lower Connecticut River. p. 227–234.In D. Merriman and L. M. Thorpe (eds.) The Connecticut River Ecological Study — The Impact of a Nuclear Power Plant. American Fisheries Society, Washington, DC, USA. Monograph No. 1.\nOdum, W. E., T. J. Smith III, J. K. Hoover, and C. C. McIvor. 1984. The ecology of tidal freshwater marshes of the United States east coast: Community profile. U.S. Fish and Wildlife Service, Office of Biological Sciences, Washington, DC, USA. FWS\u002FOBS-83\u002F17.\nOsteen, D. V., A. G. Eversole, and R. W. Christie. 1989. Spawning utilization of an abandoned ricefield by blueback herring. p. 553–565.In R. R. Sharitz and J. W. Gibbons (eds.) Freshwater Wetlands and Wildlife. Office of Science Technical Information, Oak Ridge, TN, USA.\nSlack, R. 1991. Distribution of spawning blueback herring in the Cooper River following rediversion. M. S. Thesis. Clemson University, Clemson, SC, USA.\nSokal, R. R. and F. J. Rohlf. 1981. Biometry: The Principles and Practice of Statistics in Biological Research, 2nd ed. W. H. Freeman and Company, San Francisco, CA, USA.\nStevens, R. E. 1957. The striped bass of the Santee-Cooper Reservoir. Proceedings of the Annual Conference of Southeastern Association of Game and Fish Commissioners 11:253–264.\nSwales, S. 1989. The use of instream habitat improvement methodology in mitigating the adverse effects of river regulation on fisheries. p. 185–206.In J. A. Gore and G. E. Petts (eds.) Alternatives in Regulated River Management. CRC Press, Boca Raton, FL, USA.\nThomas, M. E. 1990. Impacts of rediversion on spawning blueback herring in Cooper River. M.S. Thesis. Clemson University, Clemson, SC, USA.\nTompkins, M. E.. 1986. Historical review of South Carolina’s impoundments. p. 3–27.In M. R. DeVoe and D. S. Baughman (eds.) South Carolina Coastal Wetland Impoundments. Ecological Characterization, Management and Use. Vol. II. Technical Synthesis. South Carolina Sea Grant Consortium, Charleston, SC, USA. Publication No. SC-SG-TR-82-2.\nU.S. Army Corps of Engineers. 1975. Final environmental statement, Cooper River Rediversion Project, Charleston Harbor, South Carolina. Charleston, SC, USA.\nWenner, C. A., J. C. McGovern, R. Martore, H. R. Beatty, and W. A. Roumillat. 1986. Icthyofauna. p. 415–528.In R. M. DeVoe and D. S. Baughman (eds.) South Carolina Wetland Impoundments: Ecological Characterization, Management Status and Use. Vol. II. Technical Synthesis, South Carolina Sea Grant Consortium, Charleston, SC, USA. Publication No. SC-SG-TR-82-2.\nWest, J. C., A. G. Eversole, and R. W. Christie. 1988. Influence of river discharge on blueback herring abundance. Proceedings of the Annual Conference of Southeastern Fish and Wildlife Agencies 42:166–174.",{"VOID":2191},"10.1007\u002FBF03160540","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002FBF03160540",[2194,2209,2222],{"id":2195,"sortIndex":32,"researcher":28,"roles":2196,"affiliations":2197,"properties":2206,"displayName":2208,"givenName":28,"familyName":28},"45ffaa1a-1182-4521-bc39-586d4cc946b2",[1037],[2198],{"id":2199,"sortIndex":32,"affiliation":2200,"properties":28},"12b1cb74-6420-4e8a-8ae2-0092e537731f",{"id":2199,"createTime":28,"updateTime":28,"relativeEntities":2201,"slug":28,"properties":2202,"entityType":28,"verifyStatus":28,"verifyTime":28,"verifyNote":28,"languages":28,"translateLanguages":28,"viewCount":28,"url":28,"parentIds":2205,"statistic":28},[],{"title":2203},{"VI":2204},"Department of Aquaculture, Fisheries and Wildlife, Clemson University, Clemson",[],{"title":2207},{"VI":2208},"Matthew E. 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