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J Orthop Res 20:208–214\nBandy W, Rusche K, Tekulve F (1994) Reliability and limb symmetry for five unilateral functional tests of the lower extremities. Isokinet Exerc Sci 4:108–111\nBennett JG, Stauber WT (1986) Evaluation and treatment of anterior knee pain using eccentric exercise. Med Sci Sports Exerc 18:526–530\nBerry PA, Teichtahl AJ, Galevska-Dimitrovska A, Hanna FS, Wluka AE, Wang Y, Urquhart DM, English DR, Giles GG, Cicuttini FM (2008) Vastus medialis cross-sectional area is positively associated with patella cartilage and bone volumes in a pain-free community-based population. Arthritis Res Ther 10:R143\nBolgla LA, Keskula DR (1997) Reliability of lower extremity functional performance tests. J Orthop Sports Phys Ther 26:138–142\nBourne H, Hazel WA, Scott SG, Sim FH (1988) Anterior knee pain. Mayo Clin Proc 63:482–491\nCallaghan MJ, Selfe J, McHenry A, Oldham JA (2008) Effects of patellar taping on knee joint proprioception in patients with patellofemoral pain syndrome. Manual Therapy 13:192–199\nCallaghan MJ, Oldham JA (2004) Quadriceps atrophy: to what extent does it exist in patellofemoral pain syndrome? Br J Sports Med 38:295–299\nCowan SM, Hodges PW, Bennell KL, Crossley KM (2002) Altered vastii recruitment when people with patellofemoral pain syndrome complete a postural task. Arch Phys Med Rehabil 83:989–995\nDoxey GE (1987) Assessing quadriceps femoris muscle bulk with girth measurements in subjects with patellofemoral pain. J Orthop Sports Phys Ther 9:177–183\nFairbank JC, Pynsent PB, Van Poortvliet JA, Phillips H (1984) Mechanical factors in the incidence of knee pain in adolescents and young adults. J Bone Joint Surg Br 66:685–693\nFisher RL (1986) Conservative treatment of patellofemoral pain. Orthop Clin North Am 17:269–277\nJan MH, Lin DH, Lin JJ, Lin CH, Cheng CK, Lin YF (2009) Differences in sonographic characteristics of the vastus medialis obliquus between patients with patellofemoral pain syndrome and healthy adults. Am J Sports Med 37:1743–1749\nJanwantanakul P, Gaogasigam C (2005) Vastus lateralis and vastus medialis obliquus muscle activity during the application of inhibition and facilitation taping techniques. Clin Rehabil 19:12–19\nKannus P, Niittymäki S (1994) Which factors predict outcome in the nonoperative treatment of patellofemoral pain syndrome? A prospective follow-up study. Med Sci Sports Exerc 26:289–296\nLaprade J, Culham E, Brouwer B (1998) Comparison of five isometric exercises in the recruitment of the vastus medialis oblique in persons with and without patellofemoral pain syndrome. J Orthop Sports Phys Ther 27:197–204\nLin YF, Lin JJ, Cheng CK, Lin DH, Jan MH (2008) Association between sonographic morphology of vastus medialis obliquus and patellar alignment in patients with patellofemoral pain syndrome. J Orthop Sports Phys Ther 38:196–202\nLoudon JK, Wiesner D, Goist-Foley HL, Asjes C, Loudon KL (2002) Intrarater reliability of functional performance tests for subjects with patellofemoral pain syndrome. J Athl Train 37:256–261\nPiva SR, Fitzgerald GK, Wisniewski S, Delitto A (2009) Predictors of pain and function outcome after rehabilitation in patients with patellofemoral pain syndrome. J Rehabil Med 41:604–612\nTang SFT, Chen C-K, Hsu R, Chou S-W, Hong W-H, Lew HL (2001) Vastus medialis obliquus and vastus lateralis activity in open and closed kinetic chain exercises in patients with patellofemoral pain syndrome: an electromyographic study. Arch Phys Med Rehabil 82:1441–1445\nTate CM, Williams GN, Barrance PJ, Buchanan TS (2006) Lower extremity muscle morphology in young athletes: an MRI-based analysis. Med Sci Sports Exerc 38:122–128\nThomee R, Renstrom P, Karlsson J, Grimby G (1995) Patellofemoral pain syndrome in young women. I. A clinical analysis of alignment, pain parameters, common symptoms and functional activity level. Scand J Med Sci Sports 5:237–244\nWilk KE, Davies GJ, Mangine RE, Malone TR (1998) Patellofemoral disorders: a classification system and clinical guidelines for nonoperative rehabilitation. J Orthop Sports Phys Therapy 28: 307–322 (review)\nWitvrouw E, Sneyers C, Lysens R, Victor J, Bellemans J (1996) Reflex response times of vastus medialis oblique and vastus lateralis in normal subjects and in subjects with patellofemoral pain syndrome. J Orthop Sports Phys Ther 24:160–165\nYip SL, Ng GY (2006) Biofeedback supplementation to physiotherapy exercise programme for rehabilitation of patellofemoral pain syndrome: a randomized controlled pilot study. Clin Rehabil 20:1050–1057",{"EN":133},"The aim of this study was to assess muscle torque, total volume, and cross-sectional area, and lower limb function of the quadriceps muscle in women with unilateral patellofemoral pain syndrome (PFPS). Twenty-four women with unilateral patellofemoral pain participated in the study, with each subject acting as their own internal control by using the unaffected limb. quadriceps muscle torque was measured with the Isomed 2000®. The total volume and cross-sectional area (CSA) of the quadriceps muscle were measured by using magnetic resonance imaging. Lower limb function was assessed by hop and step-down tests. There was a significant difference in the total volume (P \u003C 0.05) and in the cross-sectional area (P \u003C 0.05) of the quadriceps muscle between affected and unaffected sides. There was a significant difference in the peak torque of the quadriceps muscle at 60°\u002Fs between affected and unaffected sides (P \u003C 0.05). There were significant correlations between quadriceps largest CSA and volume on the affected side (P \u003C 0.05) and on the unaffected side (P \u003C 0.05). There were significant negative correlations between the smallest CSA and the peak torque at 180°\u002Fs (P \u003C 0.05) and at 60°\u002Fs (P \u003C 0.05) on the affected side. Decreased torque, total volume, and CSA of the quadriceps muscle are presented in unilateral with PFPS although cause or effect cannot be established. Large prospective longitudinal studies are needed to detect the changes in the muscle structure and to establish whether these features are a cause of PFPS.",{"EN":135},"Women with patellofemoral pain syndrome have quadriceps femoris volume and strength deficiency",{"VOID":137},"10.1007\u002Fs00167-010-1290-2","PUBLICATION","VERIFIED","Auto 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R, Cabitza P (2004) Sonographic versus radiographic measurement of the subacromial space width. Chir Organ Mov 89:143–150\nAzzoni R, Cabitza P, Parrini M (2004) Sonographic evaluation of subacromial space. Ultrasonics 42:683–687\nBretzke CA, Crass JR, Craig EV, Feinberg SB (1985) Ultrasonography of the rotator cuff. Normal and pathologic anatomy. Invest Radiol 20:311–315\nCholewinski JJ, Kusz DJ, Wojciechowski P et al (2008) Ultrasound measurement of rotator cuff thickness and acromio-humeral distance in the diagnosis of subacromial impingement syndrome of the shoulder. Knee Surg Sports Traumatol Arthrosc 16:408–414\nDesmeules F, Minville L, Riederer B et al (2004) Acromio-humeral distance variation measured by ultrasonography and its association with the outcome of rehabilitation for shoulder impingement syndrome. Clin J Sport Med 14:197–205\nFlatow EL, Soslowsky LJ, Ticker JB et al (1994) Excursion of the rotator cuff under the acromion. Patterns of subacromial contact. Am J Sports Med 22:779–788\nGiphart JE, van der Meijden OA, Millett PJ (2012) The effects of arm elevation on the 3-dimensional acromiohumeral distance: a biplane fluoroscopy study with normative data. J Should Elbow Surg 21:1593–1600\nGirometti R, De Candia A, Sbuelz M et al (2006) Supraspinatus tendon US morphology in basketball players: correlation with main pathologic models of secondary impingement syndrome in young overhead athletes. Preliminary report. Radiol Med (Torino) 111:42–52\nJoensen J, Couppe C, Bjordal JM (2009) Increased palpation tenderness and muscle strength deficit in the prediction of tendon hypertrophy in symptomatic unilateral shoulder tendinopathy: an ultrasonographic study. Physiotherapy 95:83–93\nJuul-Kristensen B, Bojsen-Moller F, Holst E, Ekdahl C (2000) Comparison of muscle sizes and moment arms of two rotator cuff muscles measured by ultrasonography and magnetic resonance imaging. Eur J Ultrasound 11:161–173\nKalra N, Seitz AL, Boardman ND III, Michener LA (2010) Effect of posture on acromiohumeral distance with arm elevation in subjects with and without rotator cuff disease using ultrasonography. J Orthop Sports Phys Ther 40:633–640\nLeggin BG, Michener LA, Shaffer MA et al (2006) The Penn shoulder score: reliability and validity. J Orthop Sports Phys Ther 36:138–151\nLeong HT, Tsui S, Ying M et al (2012) Ultrasound measurements on acromiohumeral distance and supraspinatus tendon thickness: test-retest reliability and correlations with shoulder rotational strengths. J Sci Med Sport 15:284–291\nMalanga GA, Chu SK, Ramirez Del TJ et al (2012) Sonographic evaluation of supraspinatus cross-sectional area in collegiate baseball players. PM R 4:488–492\nMichener LA, McClure PW, Karduna AR (2003) Anatomical and biomechanical mechanisms of subacromial impingement syndrome. Clin Biomech (Bristol, Avon) 18:369–379\nMichener LA, Walsworth MK, Doukas WC, Murphy KP (2009) Reliability and diagnostic accuracy of 5 physical examination tests and combination of tests for subacromial impingement. Arch Phys Med Rehabil 90:1898–1903\nNeer CS (1983) Impingement lesions. Clin Orthop Relat Res 3(173):70–77\nPijls BG, Kok FP, Penning LI et al (2010) Reliability study of the sonographic measurement of the acromiohumeral distance in symptomatic patients. J Clin Ultrasound 38:128–134\nSeitz AL, McClure PW, Finucane S et al (2012) The scapular assistance test results in changes in scapular position and subacromial space but not rotator cuff strength in subacromial impingement. J Orthop Sports Phys Ther 42:400–412\nSeitz AL, Michener LA (2011) Ultrasonographic measures of subacromial space in patients with rotator cuff disease: a systematic review. J Clin Ultrasound 39:146–154\nThompson MD, Landin D, Page PA (2011) Dynamic acromiohumeral interval changes in baseball players during scaption exercises. J Shoulder Elbow Surg 20:251–258\nWallny T, Wagner UA, Prange S et al (1999) Evaluation of chronic tears of the rotator cuff by ultrasound. A new index. J Bone Joint Surg Br 81:675–678\nWang HK, Lin JJ, Pan SL, Wang TG (2005) Sonographic evaluations in elite college baseball athletes. Scand J Med Sci Sports 15:29–35",{"EN":332},"To characterize the supraspinatus tendon thickness, subacromial space, and the relationship between tendon thickness and subacromial space to further elucidate the mechanisms of subacromial impingement syndrome.\n In a single-blind cross-sectional study, subjects were recruited with subacromial impingement syndrome (n = 20) and asymptomatic controls (n = 20) matched for age, gender, and hand dominance. Ultrasound images were collected using a 4–12-MHz linear transducer in B-mode of the supraspinatus tendon in the transverse (short axis) and the anterior aspect of the subacromial space outlet. Using image callipers, measurements of tendon thickness were taken at 3 points along the tendon and averaged for a single thickness measure. The subacromial space outlet was measured via the acromiohumeral distance (AHD) defined by the inferior acromion and superior humeral head. The occupation ratio was calculated as the tendon thickness as a percentage of AHD. The subacromial impingement syndrome group had a significantly thicker tendon (mean difference = 0.6 mm, p = 0.048) and a greater tendon occupation ratio (mean difference = 7.5 %, p = 0.014) compared to matched controls. There were no AHD group differences. The supraspinatus tendon was thicker and occupied a greater percentage of AHD, supporting an intrinsic mechanism. An extrinsic mechanism of tendon compression is theoretically supported, but future imaging studies need to confirm direct compression with elevation. Treatment to reduce tendon thickness may reduce symptoms, and surgical intervention to increase subacromial space may be considered if tendon compression can be verified.",{"EN":334},"Supraspinatus tendon and subacromial space parameters measured on ultrasonographic imaging in subacromial impingement syndrome",{"VOID":336},"10.1007\u002Fs00167-013-2542-8","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00167-013-2542-8",[339,354,366,381,397],{"id":340,"sortIndex":18,"researcher":17,"roles":341,"affiliations":342,"properties":351},"ad023e88-aa9d-400a-97a4-9cbf76053c24",[146],[343],{"id":17,"sortIndex":18,"affiliation":344,"properties":17},{"id":345,"createTime":346,"updateTime":346,"relativeEntities":347,"slug":17,"properties":348,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"8091a44d-f481-445f-acc0-29195c1fdf7a","2024-02-10T13:18:00.130+00:00",[],{"title":349},{"VI":350},"COOR Laboratory, Department of Physical Therapy, Virginia Commonwealth University, Richmond, USA",{"title":352},{"VI":353},"Lori A. Michener",{"id":355,"sortIndex":261,"researcher":17,"roles":356,"affiliations":357,"properties":363},"ab0c1496-0d7f-4f20-9953-d1ebdec277c9",[146],[358],{"id":17,"sortIndex":18,"affiliation":359,"properties":17},{"id":345,"createTime":346,"updateTime":346,"relativeEntities":360,"slug":17,"properties":361,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":362},{"VI":350},{"title":364},{"VI":365},"Mark K. Timmons",{"id":367,"sortIndex":113,"researcher":17,"roles":368,"affiliations":369,"properties":378},"8a09f69f-49da-41e8-918a-f0826e02ef22",[146],[370],{"id":17,"sortIndex":18,"affiliation":371,"properties":17},{"id":372,"createTime":373,"updateTime":373,"relativeEntities":374,"slug":17,"properties":375,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"de9d6799-0813-4d91-be56-6e8e5478de31","2024-02-10T13:18:00.176+00:00",[],{"title":376},{"VI":377},"Physical Therapy Department, Bouve College of Health Science, Northeastern University, Boston, USA",{"title":379},{"VI":380},"Amee L. Seitz",{"id":382,"sortIndex":215,"researcher":17,"roles":383,"affiliations":384,"properties":394},"e528902a-c2be-45b7-b93e-4d9d150d90a3",[146],[385],{"id":17,"sortIndex":18,"affiliation":386,"properties":17},{"id":387,"createTime":388,"updateTime":388,"relativeEntities":389,"slug":390,"properties":391,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"188e3fa3-5cd6-4ce4-995a-59f49f0c6eea","2024-04-08T04:59:22.163+00:00",[],"Department-of-Radiology-University-of-California-Los-Angeles-Los-Angeles-USA",{"title":392},{"VI":393},"Department of Radiology, University of California Los Angeles, Los Angeles, USA",{"title":395},{"VI":396},"Matthew K. Walsworth",{"id":398,"sortIndex":112,"researcher":17,"roles":399,"affiliations":400,"properties":409},"24485680-7ef8-4db2-84cc-8236343e73ff",[146],[401],{"id":17,"sortIndex":18,"affiliation":402,"properties":17},{"id":403,"createTime":404,"updateTime":404,"relativeEntities":405,"slug":17,"properties":406,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"af8dd572-177e-43e2-b220-67465e96fe12","2024-02-07T22:58:59.529+00:00",[],{"title":407},{"VI":408},"School of Physical Therapy and Rehabilitation, Dokuz Eylül University, İzmir, Turkey",{"title":410},{"VI":411},"Sevgi S. Subasi Yesilyaprak",{"url":337,"publisher":413,"properties":440},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":414,"slug":10,"properties":415,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":418,"manageAffiliations":419,"indexDatabases":420,"url":17,"thumbnailPath":17,"statistic":435,"gsStatistic":17,"type":17,"analyzePriority":17},[],{"issn":416,"title":417},{"VOID":13},{"EN":10},[],[],[421,428],{"id":90,"indexDatabase":422,"url":103,"indexYears":104,"academicFieldIds":427,"indexDatabaseRanking":109},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":423,"label":424,"description":425,"key":100,"publicationTags":426,"standard":17},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108],{"id":69,"indexDatabase":429,"url":84,"indexYears":17,"academicFieldIds":434,"indexDatabaseRanking":17},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":430,"label":431,"description":432,"key":80,"publicationTags":433,"standard":17},[],{"EN":76,"VI":76},{"VI":78,"EN":79},[82,83],[86,87,88],{"impactFactor":18,"impactFactorByYear":436,"i10Index":112,"i10IndexLast5Year":18,"totalPublication":113,"totalPublicationByYear":437,"totalCitation":115,"totalCitationByYear":438,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":439,"hindexLast5Year":112,"hindex":112},{},{"2003":113},{"2003":115},{"2003":117},{"volume":441,"pages":443},{"VOID":442},"23",{"VOID":444},"363-369","2013-06-05",2013,{"id":448,"createTime":449,"updateTime":450,"relativeEntities":451,"slug":452,"properties":453,"entityType":138,"verifyStatus":139,"verifyTime":450,"verifyNote":140,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":462,"fullTextUrl":17,"authors":463,"publicationType":285,"publisherRelationship":604,"citationCount":17,"citationInfo":17,"publishDate":637,"publishYear":638,"citationAnalyzeStatus":16,"lastCitationAnalyze":17,"indexDatabases":17,"openAccess":17,"references":17,"isForceReanalyzing":321},"55d9d3e2-3edc-43a4-9162-b121d0ea785b","2023-12-22T03:28:04.451+00:00","2024-12-28T23:59:37.347+00:00",[],"Continuous-passive-motion-and-its-effects-on-knee-flexion-after-total-knee-arthroplasty-in-patients-with-knee-osteoarthritis",{"references":454,"abstract":456,"title":458,"doi":460},{"VOID":455},"Abizanda Soler P, Paterna Mellinas G, Martinez Sanchez E, Lopez Jimenez E (2010) Comorbidity in the elderly: utility and validity of assessment tools. Rev Esp Geriatr Gerontol 45:219–228\nAlkire MR, Swank ML (2010) Use of inpatient continuous passive motion versus no CPM in computer-assisted total knee arthroplasty. Orthop Nurs 29:36–40\nBade MJ, Kittelson JM, Kohrt WM, Stevens-Lapsley JE (2014) Predicting functional performance and range of motion outcomes after total knee arthroplasty. Am J Phys Med Rehabil 93:579–585\nBasso DM, Knapp L (1987) Comparison of two continuous passive motion protocols for patients with total knee implants. Phys Ther 67:360–363\nBeaupre LA, Davies DM, Jones CA, Cinats JG (2001) Exercise combined with continuous passive motion or slider board therapy compared with exercise only: a randomized controlled trial of patients following total knee arthroplasty. Phys Ther 81:1029–1037\nBellamy N, Buchanan WW, Goldsmith CH, Campbell J, Stitt LW (1988) Validation study of WOMAC: a health status instrument for measuring clinically important patient relevant outcomes to antirheumatic drug therapy in patients with osteoarthritis of the hip or knee. J Rheumatol 15:1833–1840\nBennett LA, Brearley SC, Hart JA, Bailey MJ (2005) A comparison of 2 continuous passive motion protocols after total knee arthroplasty: a controlled and randomized study. J Arthroplasty 20:225–233\nBible JE, Simpson AK, Biswas D, Pelker RR, Grauer JN (2009) Actual knee motion during continuous passive motion protocols is less than expected. Clin Orthop Relat Res 467:2656–2661\nBjerke J, Ohberg F, Nilsson KG, Foss OA, Stensdotter AK (2014) Peak knee flexion angles during stair descent in TKA patients. J Arthroplasty 29:707–711\nChen B, Zimmerman JR, Soulen L, DeLisa JA (2000) Continuous passive motion after total knee arthroplasty: a prospective study. Am J Phys Med Rehabil 79:421–426\nChen LH, Chen CH, Lin SY, Chien SH, Su JY, Huang CY, Wang HY, Chou CL, Tsai TY, Cheng YM, Huang HT (2013) Aggressive continuous passive motion exercise does not improve knee range of motion after total knee arthroplasty. J Clin Nurs 22:389–394\nChiarello CM, Gundersen L, O’Halloran T (1997) The effect of continuous passive motion duration and increment on range of motion in total knee arthroplasty patients. J Orthop Sports Phys Ther 25:119–127\nCohen J (1988) The analysis of variance. Statistical power analysis for the behavioral sciences, 2nd edn. Lawrence Erlbaum Associates, Hillsdale, pp 273–406\nColle F, Lopomo N, Bruni D, Visani A, Iacono F, Zaffagnini S, Marcacci M (2014) Analysis of knee functional flexion axis in navigated TKA: identification and repeatability before and after implant positioning. Knee Surg Sports Traumatol Arthrosc 22:694–702\nDenis M, Moffet H, Caron F, Ouellet D, Paquet J, Nolet L (2006) Effectiveness of continuous passive motion and conventional physical therapy after total knee arthroplasty: a randomized clinical trial. Phys Ther 86:174–185\nEdwards JZ, Greene KA, Davis RS, Kovacik MW, Noe DA, Askew MJ (2004) Measuring flexion in knee arthroplasty patients. J Arthroplasty 19:369–372\nErsozlu S, Sahin O, Ozgur AF, Tuncay IC (2009) The effects of two different continuous passive motion protocols on knee range of motion after total knee arthroplasty: a prospective analysis. Acta Orthop Traumatol Turc 43:412–418\nFaul F, Erdfelder E, Lang AG, Buchner A (2007) G*Power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behav Res Methods 39:175–191\nFerguson CJ (2009) An effect size primer: a guide for clinicians and researchers. Prof Psychol Res Pract 40:532–538\nGlassner PJ, Slover JD, Bosco JA 3rd, Zuckerman JD (2011) Blood, bugs, and motion—what do we really know in regard to total joint arthroplasty? Bull NYU Hosp Jt Dis 69:73–80\nGose JC (1987) Continuous passive motion in the postoperative treatment of patients with total knee replacement. A retrospective study. Phys Ther 67:39–42\nHarvey LA, Brosseau L, Herbert RD (2014) Continuous passive motion following total knee arthroplasty in people with arthritis. Cochrane Database Syst Rev 2:CD004260\nHerbold JA, Bonistall K, Blackburn M, Agolli J, Gaston S, Gross C, Kuta A, Babyar S (2014) Randomized controlled trial of the effectiveness of continuous passive motion after total knee replacement. Arch Phys Med Rehabil 95:1240–1245\nIacono F, Bruni D, Bignozzi S, Colle F, Marcacci M (2014) Does total knee arthroplasty modify flexion axis of the knee? Knee Surg Sports Traumatol Arthrosc 22:1728–1735\nJevsevar DS, Riley PO, Hodge WA, Krebs DE (1993) Knee kinematics and kinetics during locomotor activities of daily living in subjects with knee arthroplasty and in healthy control subjects. Phys Ther 73:229–239\nJohnson DP, Eastwood DM (1992) Beneficial effects of continuous passive motion after total condylar knee arthroplasty. Ann R Coll Surg Engl 74:412–416\nKonrad A, Tilp M (2014) Increased range of motion after static stretching is not due to changes in muscle and tendon structures. Clin Biomech 29:636–642\nLenssen AF, van Dam EM, Crijns YH, Verhey M, Geesink RJ, van den Brandt PA, de Bie RA (2007) Reproducibility of goniometric measurement of the knee in the in-hospital phase following total knee arthroplasty. BMC Musculoskelet Disord 8:83\nLenssen TA, van Steyn MJ, Crijns YH, Waltje EM, Roox GM, Geesink RJ, van den Brandt PA, De Bie RA (2008) Effectiveness of prolonged use of continuous passive motion (CPM), as an adjunct to physiotherapy, after total knee arthroplasty. BMC Musculoskelet Disord 9:60\nMatsumoto H, Okuno M, Nakamura T, Yamamoto K, Hagino H (2012) Fall incidence and risk factors in patients after total knee arthroplasty. Arch Orthop Trauma Surg 132:555–563\nMatsuzaki T, Yoshida S, Kojima S, Watanabe M, Hoso M (2013) Influence of ROM exercise on the joint components during immobilization. J Phys Ther Sci 25:1547–1551\nMcCalden RW, MacDonald SJ, Charron KD, Bourne RB, Naudie DD (2010) The role of polyethylene design on postoperative TKA flexion: an analysis of 1534 cases. Clin Orthop Relat Res 468:108–114\nMeneghini RM, Pierson JL, Bagsby D, Ziemba-Davis M, Berend ME, Ritter MA (2007) Is there a functional benefit to obtaining high flexion after total knee arthroplasty? J Arthroplasty 22:43–46\nMiner AL, Lingard EA, Wright EA, Sledge CB, Katz JN (2003) Knee range of motion after total knee arthroplasty: how important is this as an outcome measure? J Arthroplasty 18:286–294\nMorris J (1995) The value of continuous passive motion in rehabilitation following total knee replacement. Physiotherapy 81:557–562\nMulholland SJ, Wyss UP (2001) Activities of daily living in non-Western cultures: range of motion requirements for hip and knee joint implants. Int J Rehabil Res 24:191–198\nMyles CM, Rowe PJ, Walker CR, Nutton RW (2002) Knee joint functional range of movement prior to and following total knee arthroplasty measured using flexible electrogoniometry. Gait Posture 16:46–54\nNadler SF, Malanga GA, Zimmerman JR (1993) Continuous passive motion in the rehabilitation setting. A retrospective study. Am J Phys Med Rehabil 72:162–165\nNaylor JM, Ko V, Rougellis S, Green N, Mittal R, Heard R, Yeo AE, Barnett A, Hackett D, Saliba C, Smith N, Mackey M, Harmer A, Harris IA, Adie S, McEvoy L (2012) Is discharge knee range of motion a useful and relevant clinical indicator after total knee replacement? Part 2. J Eval Clin Pract 18:652–658\nPiedade SR, Pinaroli A, Servien E, Neyret P (2013) TKA outcomes after prior bone and soft tissue knee surgery. Knee Surg Sports Traumatol Arthrosc 21:2737–2743\nPope RO, Corcoran S, McCaul K, Howie DW (1997) Continuous passive motion after primary total knee arthroplasty. Does it offer any benefits? J Bone Joint Surg Br 79:914–917\nRoh YW, Jang J, Choi WC, Lee JK, Chun SH, Lee S, Seong SC, Lee MC (2013) Preservation of the posterior cruciate ligament is not helpful in highly conforming mobile-bearing total knee arthroplasty: a randomized controlled study. Knee Surg Sports Traumatol Arthrosc 21:2850–2859\nRowe PJ, Myles CM, Walker C, Nutton R (2000) Knee joint kinematics in gait and other functional activities measured using flexible electrogoniometry: how much knee motion is sufficient for normal daily life? Gait Posture 12:143–155\nSakari R, Era P, Rantanen T, Leskinen E, Laukkanen P, Heikkinen E (2010) Mobility performance and its sensory, psychomotor and musculoskeletal determinants from age 75 to age 80. Aging Clin Exp Res 22:47–53\nStratford PW, Kennedy DM, Robarts SF (2010) Modelling knee range of motion post arthroplasty: clinical applications. Physiother Can 62:378–387\nZhou H, Wang DM, Liu TR, Zeng XS, Wang CT (2012) Kinematics of hip, knee, ankle of the young and elderly Chinese people during kneeling activity. J Zhejiang Univ Sci B 13:831–838",{"EN":457},"This study evaluated the effects of continuous passive motion (CPM) on accelerated flexion after total knee arthroplasty (TKA) and whether CPM application measures (i.e. initial angle and daily increment) are associated with functional outcomes. A retrospective investigation was conducted at the rehabilitation centre of a university-based teaching hospital. Patients who received CPM therapy immediately after TKA surgery were categorized into rapid-, normal-, and slow-progress groups according to their response to CPM during their acute inpatient stay. Knee pain, passive knee flexion, and knee function—measured using the Western Ontario and McMaster Universities Osteoarthritis Index (WOMAC)—were assessed preoperatively at discharge and at 3- and 6-month outpatient follow-up visits. A total of 354 patients were followed for 6 months after inpatient-stay discharge. The patients in the rapid-progress group (n = 119) exhibited significantly greater knee flexions than those in the slow-progress group did (n = 103) at the 3-month follow-up [mean difference (MD) = 10.3°, 95 % confidence interval (CI) 4.3°–16.3°, p \u003C 0.001] and 6-month follow-up (MD = 10.9°, 95 % CI 6.3°–15.6°, p \u003C 0.001). Significant WOMAC score differences between the rapid- and slow-progress groups were observed at the 3-month follow-up (MD = 7.2, 95 % CI 5.4–9.1, p \u003C 0.001) and 6-month follow-up (MD = 16.1, 95 % CI 13.4–18.7, p \u003C 0.001). CPM initial angles and rapid progress significantly predicted short- and long-term outcomes in knee flexion and WOMAC scores (p \u003C 0.001). When CPM is used, early application with initial high flexion and rapid progress benefits knee function up to 6 months after TKA. II.",{"EN":459},"Continuous passive motion and its effects on knee flexion after total knee arthroplasty in patients with knee osteoarthritis",{"VOID":461},"10.1007\u002Fs00167-015-3754-x","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00167-015-3754-x",[464,479,494,516,550,572,589],{"id":465,"sortIndex":113,"researcher":17,"roles":466,"affiliations":467,"properties":476},"ef11a8a1-1496-4d77-a7e9-16b080d37856",[146],[468],{"id":17,"sortIndex":18,"affiliation":469,"properties":17},{"id":470,"createTime":471,"updateTime":471,"relativeEntities":472,"slug":17,"properties":473,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"77790eb8-a9c7-4a05-b180-5099a1779c73","2023-12-07T23:58:55.621+00:00",[],{"title":474},{"VI":475},"Department of Physical Medicine and Rehabilitation, Shuang Ho Hospital, Taipei Medical University, Taipei, Taiwan",{"title":477},{"VI":478},"Li-Fong Lin",{"id":480,"sortIndex":261,"researcher":17,"roles":481,"affiliations":482,"properties":491},"410d6851-cca9-425f-94fc-0ace2014f806",[146],[483],{"id":17,"sortIndex":18,"affiliation":484,"properties":17},{"id":485,"createTime":486,"updateTime":486,"relativeEntities":487,"slug":17,"properties":488,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"a498a817-702c-40b2-ad6d-106365755e83","2023-12-01T00:03:21.203+00:00",[],{"title":489},{"VI":490},"Department of Orthopedics, Shuang Ho Hospital, Taipei Medical University, Taipei, Taiwan",{"title":492},{"VI":493},"Yen-Shuo Chiu",{"id":495,"sortIndex":18,"researcher":17,"roles":496,"affiliations":497,"properties":513},"ad82123a-79cb-4c1d-a51e-147d3ce461ff",[146],[498,503],{"id":17,"sortIndex":18,"affiliation":499,"properties":17},{"id":470,"createTime":471,"updateTime":471,"relativeEntities":500,"slug":17,"properties":501,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":502},{"VI":475},{"id":504,"sortIndex":112,"affiliation":505,"properties":512},"5c5e95a3-5300-4513-9875-558d7dab3e3f",{"id":506,"createTime":507,"updateTime":507,"relativeEntities":508,"slug":17,"properties":509,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"e439de80-5d5f-45c3-9ecb-47a1f610847e","2024-01-12T07:27:34.328+00:00",[],{"title":510},{"VI":511},"School and Graduate Institute of Physical Therapy, College of Medicine, National Taiwan University, 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Rehabilitation, School of Medicine, College of Medicine, Taipei Medical University, Taipei, Taiwan",{},{"id":536,"sortIndex":112,"affiliation":537,"properties":546},"8b373967-8959-4cda-b34c-5b31658250c2",{"id":538,"createTime":539,"updateTime":540,"relativeEntities":541,"slug":542,"properties":543,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"d58bfdb0-8dac-4b6b-832e-850ca16a043e","2024-04-11T22:00:57.095+00:00","2024-12-06T02:10:47.748+00:00",[],"Graduate-Institute-of-Injury-Prevention-and-Control-Taipei-Medical-University-Taipei-Taiwan",{"title":544},{"EN":545},"Graduate Institute of Injury Prevention and Control, Taipei Medical University, Taipei, Taiwan",{},{"title":548},{"VI":549},"Tsan-Hon 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O, Galaud B, Descamps S, Boisrenoult P, Leray E, Lustig S, Bonnevialle P, Laffargue P, Paillot JL, Rosset P, Neyret P, Saragaglia D, Lapra C, French Society of Orthopaedic S, Traumatology (2013) Relevancy and reproducibility of magnetic resonance imaging (MRI) interpretation in multiple-ligament injuries and dislocations of the knee. Orthop Traumatol Surg Res 99:305–311\nChen W, Zhao J, Wen Y, Xie B, Zhou X, Guo L, Yang L, Wang J, Dai Y, Zhou D (2015) Accuracy of 3-T MRI using susceptibility-weighted imaging to detect meniscal tears of the knee. Knee Surg Sports Traumatol Arthrosc 23:198–204\nCrawford R, Walley G, Bridgman S, Maffulli N (2007) Magnetic resonance imaging versus arthroscopy in the diagnosis of knee pathology, concentrating on meniscal lesions and ACL tears: a systematic review. Brit Med Bull 84:5–23\nDe Smet AA, Graf BK (1994) Meniscal tears missed on MR imaging: relationship to meniscal tear patterns and anterior cruciate ligament tears. AJR Am J Roentgenol 162:905–911\nDelin C, Silvera S, Coste J, Thelen P, Lefevre N, Ehkirch FP, Le Couls V, Oudjit A, Radier C, Legmann P (2013) Reliability and diagnostic accuracy of qualitative evaluation of diffusion-weighted MRI combined with conventional MRI in differentiating between complete and partial anterior cruciate ligament tears. Eur Radiol 23:845–854\nHalinen J, Koivikko M, Lindahl J, Hirvensalo E (2009) The efficacy of magnetic resonance imaging in acute multi-ligament injuries. Int Orthop 33:1733–1738\nHirschmann MT, Iranpour F, Muller W, Friederich NF (2010) Surgical treatment of complex bicruciate knee ligament injuries in elite athletes: what long-term outcome can we expect? Am J Sports Med 38:1103–1109\nHirschmann MT, Zimmermann N, Rychen T, Candrian C, Hudetz D, Lorez LG, Amsler F, Muller W, Friederich NF (2010) Clinical and radiological outcomes after management of traumatic knee dislocation by open single stage complete reconstruction\u002Frepair. BMC Musculoskelet Disord 11:102\nHowells NR, Brunton LR, Robinson J, Porteus AJ, Eldridge JD, Murray JR (2011) Acute knee dislocation: an evidence based approach to the management of the multiligament injured knee. Injury 42:1198–1204\nKarantanas AH (2014) What’s new in the use of MRI in the orthopaedic trauma patient? Injury 45:923–933\nLafferty PM, Min W, Tejwani NC (2009) Stress radiographs in orthopaedic surgery. J Am Acad Orthop Surg 17:528–539\nLaPrade RF, Ho CP, James E, Crespo B, LaPrade CM, Matheny LM (2015) Diagnostic accuracy of 3.0 T magnetic resonance imaging for the detection of meniscus posterior root pathology. Knee Surg Sports Traumatol Arthrosc 23:152–157\nLaPrade RF, Resig S, Wentorf F, Lewis JL (1999) The effects of grade III posterolateral knee complex injuries on anterior cruciate ligament graft force. A biomechanical analysis. Am J Sports Med 27:469–475\nLefevre N, Naouri JF, Bohu Y, Klouche S, Herman S (2014) Sensitivity and specificity of bell-hammer tear as an indirect sign of partial anterior cruciate ligament rupture on magnetic resonance imaging. Knee Surg Sports Traumatol Arthrosc 22:1112–1118\nLonner JH, Dupuy DE, Siliski JM (2000) Comparison of magnetic resonance imaging with operative findings in acute traumatic dislocations of the adult knee. J Orthop Trauma 14:183–186\nMcKee L, Ibrahim MS, Lawrence T, Pengas IP, Khan WS (2014) Current concepts in acute knee dislocation: the missed diagnosis? Open Orthop J 8:162–167\nMedina O, Arom GA, Yeranosian MG, Petrigliano FA, McAllister DR (2014) Vascular and nerve injury after knee dislocation: a systematic review. Clin Orthop Relat Res 472:2621–2629\nMunshi M, Davidson M, MacDonald PB, Froese W, Sutherland K (2000) The efficacy of magnetic resonance imaging in acute knee injuries. Clin J Sport Med 10:34–39\nNam TS, Kim MK, Ahn JH (2014) Efficacy of magnetic resonance imaging evaluation for meniscal tear in acute anterior cruciate ligament injuries. Arthroscopy 30:475–482\nOdgaard F, Tuxoe J, Joergensen U, Lange B, Lausten G, Brettlau T, Thomsen HS (2002) Clinical decision making in the acutely injured knee based on repeat clinical examination and MRI. Scand J Med Sci Sports 12:154–162\nPark HJ, Kim SS, Lee SY, Park NH, Ahn JH, Chung EC, Park JY, Kim MS (2014) Comparison between arthroscopic findings and 1.5-T and 3-T MRI of oblique coronal and sagittal planes of the knee for evaluation of selective bundle injury of the anterior cruciate ligament. AJR Am J Roentgenol 203:W199–W206\nPotter HG, Weinstein M, Allen AA, Wickiewicz TL, Helfet DL (2002) Magnetic resonance imaging of the multiple-ligament injured knee. J Orthop Trauma 16:330–339\nRamnath RR, Magee T, Wasudev N, Murrah R (2006) Accuracy of 3-T MRI using fast spin-echo technique to detect meniscal tears of the knee. AJR Am J Roentgenol 187:221–225\nSampson MJ, Jackson MP, Moran CJ, Shine S, Moran R, Eustace SJ (2008) Three Tesla MRI for the diagnosis of meniscal and anterior cruciate ligament pathology: a comparison to arthroscopic findings. Clin Radiol 63:1106–1111\nSchub DL, Altahawi F, Meisel AF, Winalski C, Parker RD, Saluan PM (2012) Accuracy of 3-Tesla magnetic resonance imaging for the diagnosis of intra-articular knee injuries in children and teenagers. J Pediatr Orthop 32:765–769\nSwenson TM (2000) Physical diagnosis of the multiple-ligament-injured knee. Clin Sports Med 19:415–423\nTurner DA, Prodromos CC, Petasnick JP, Clark JW (1985) Acute injury of the ligaments of the knee: magnetic resonance evaluation. Radiology 154:717–722\nTwaddle BC, Bidwell TA, Chapman JR (2003) Knee dislocations: where are the lesions? A prospective evaluation of surgical findings in 63 cases. J Orthop Trauma 17:198–202\nTwaddle BC, Hunter JC, Chapman JR, Simonian PT, Escobedo EM (1996) MRI in acute knee dislocation. A prospective study of clinical, MRI, and surgical findings. J Bone Joint Surg Br 78:573–579\nWalker RE, McDougall D, Patel S, Grant JA, Longino PD, Mohtadi NG (2013) Radiologic review of knee dislocation: from diagnosis to repair. AJR Am J Roentgenol 201:483–495",{"EN":648},"The purpose of this study was to assess the sensitivity and specificity of 1.5 T magnetic resonance imaging (MRI) in diagnosing and identifying the specific injury pattern in patients with knee dislocation. The hypothesis was that the sensitivity and specificity are low in patients with posterolateral corner injury and\u002For PCL tear. A retrospective study was performed on 38 patients (m:f = 29:9, mean age ± SD 34.3 ± 14.0) with traumatic knee dislocation, who underwent 1.5 T MRI prior to surgery. MRI scans were analysed by a musculoskeletal radiologist, and the presence and type of tears to ligaments, tendons and meniscus or bone were recorded. Comparison was made with the intraoperative findings from the surgical records using the same reporting scheme. The agreement between MRI and surgical findings was assessed using kappa statistics, and the sensitivity and specificity were calculated. In patients with knee dislocation, MRI was found to have low sensitivity (25–38 %) but high specificity (94–97 %) for diagnosing injury to the posterolateral corner. There was high sensitivity in the diagnosis of tears in the cruciate and collateral ligaments (97–100 %); the specificity, however, was lower (50–67 %). The diagnosis of meniscal injury showed low sensitivity (36–56 %) and moderate specificity (69–83 %). MRI is a sensitive measure of cruciate and collateral ligament injury in acute knee dislocation; however, it does not reliably diagnose injury to the posterolateral corner or meniscus, and therefore, a higher index of suspicion is required during arthroscopy to prevent misdiagnosis which could affect long-term clinical outcome. 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M, Cetik O, Talu U, Sözen YV (2002) Arthroscopy-assisted operative management of tibial plateau fractures. Knee Surg Sports Traumatol Arthrosc 10:364–370\nBlokker CP, Rorabeck CH, Bourne RB (1984) Tibial plateu fractures. An analysis of the results of treatment in 60 patients. Clin Orthop Relat Res 182:193–199\nBrown TD, Anderson DD, Nepola JV et al (1988) Contact stress aberrations following imprecise reduction of simple tibial plateau fractures. J Orthop Res 6:851–862\nBuchko GM, Johnson DH (1996) Arthroscopy-assisted operative management of tibial plateau fractures. Clin Orthop Relat Res 332:29–36\nChan YS, Yuan LJ, Hung SS et al (2003) Arthroscopic-assisted reduction with bilateral buttress plate fixation of complex tibial plateau fractures. Arthroscopy 19:974–984\nDirschl DR, Dawson PA (2004) Injury severity assessment in tibial plateau fractures. Clin Orthop Relat Res 423:85–92\nHolzach P, Matter P, Minter J (1994) Arthroscopically assisted treatment of lateral tibial plateau fractures in skiers; use of a cannulated reduction system. J Orthop Trauma 8:273–281\nHonkonen SE (1994) Indications for surgical teratment of tibial condyle fractures. Clin Orthop Relat Res 302:199–205\nHonkonen SE (1995) Degenerative arthritis after tibial plateau fractures. J Orthop Trauma 9:273–277\nLachiewicz PF, Funcik T (1990) Factors influencing the results of open reduction and internal fixation of tibial plateau fractures. Clin Orthop Relat Res 259:210–215\nLansinger O, Bergman B, Korner L, Andersson GB (1986) Tibial condylar fractures. A twenty year follow-up. J Bone Joint Surg Am 68:13–19\nLefkoe TP, Walsh WR. Anastasatos J, Ehrlich MG. Barrach HJ (1995) Remodeling of articular step-offs. Is osteoarthrosis dependent on defect size? Clin Orthop Relat Res 314:253–265\nLlinas A, McKellop HA, Marshall GJ et al (1993) Healing and remodeling of articular incongruities in a rabbit fracture model. J Bone Joint Surg Am 75:1508–1523\nLo IKY, Thornton G, Miniaci A et al (2003) Structure and function of diarthrodial joints. In: Mc Ginty JB (eds) Operative arthroscopy. Lippincott Williams and Wilkins, Philadelphia, pp 41–126\nLovasz G, Llinas A, Benya PD et al (1998) Cartilage changes causen by a coronal surface step-off in a rabit model. Clin Orthop Relat Res 354:224–234\nLubowitz JH, Elson WS, Guttmann D (2004) Part I. Arthroscopic management of tibial plateau fractures. Arthroscopy 20:1063–1070\nLucht U, Pilgaard S (1971) Fractures of the tibial condyles. Acta Orthop Scand 42:366–376\nMarsh JL, Buckwalter J, Gelberman R et al (2002) Articular fractures: does an anatomic reduction really change the result? J Bone Joint Surg Am 84:1259–1271\nO’Driscoll SW (1998) The healing and regeneration of articular cartilage. J Bone Joint Surg Am 80:1795–1812\nPorter BB (1970) Crush fractures of the lateral tibial table. Factors influencing the prognosis. J Bone joint Surg Br 52:676–687\nRasmussen PS (1973) Tibial condylar fractures. Impairment of knee joint stability as an indication for surgical treatment. J Bone Joint Surg Am 55:1331–1350\nRoerdink WH, Oskam J, Vierhout PA (2001) Arthroscopically assisted osteosynthesis of tibial plateau fractures in patients older than 55 years. Arthroscopy 17:826–831\nScheerlink T, Ng CS, Handelberg F, Casteleyn PP (1998) Medium-term results of percutaneous arthroscopically-assisted osteosynthesis of fractures of the tibial plateau. J Bone Joint Surg Br 80:959–964\nSu EP, Westrich GH, Rana AJ et al (2004) Operative treatment of tibial plateau fractures in patients older than 55 years. Clin Orthop Relat Res 421:240–248\nWaddell JP, Johnston DW, Neidre A (1981) Fractures of tibial plateu: a review of ninety-five patients and comparison of treatment methods. J Trauma 21:376–381",{"EN":847},"The only way to show the healing potential in hyaline cartilage after the treatment of tibial plateau fractures in humans is the second-look arthroscopy. Our aim is to examine the healing potential of the hyaline cartilage in tibial plateau fractures treated with arthroscopy-assisted surgery. We applied second-look arthroscopy to the 12 patients out of 52 who had tibial plateau fractures treated by arthroscopy-assisted surgery. The mean age was 41. The tibial plateau fractures were classified according to Schatzker classification. The period between the primary surgical treatment and second-look arthroscopy was on an average of 19 months. Step-off was detected in 3 out of 12 patients. Hyaline cartilage of nine patients who did not have step-off was found obviously on the fracture line. None of them had displacement. Three patients out of 12 were above 50 years old and the average follow-up period was 26 months. Grade II–III chondral defect was detected on the fracture line and femoral condyle in patients above 50 years. For patients below 50 years old, the follow-up period was 21 months and grade I–II chondral defect was detected on the fracture line and femoral condyle. Until now in literature, tibial plateau fractures have been evaluated clinically and radiologically, but in our cases we directly saw the lesion. Cartilage healing is limited in human beings. On the fracture line, cartilage defect continues, although anatomic reduction has been achieved. Moreover, if there is step-off, insufficient healing potential appears. Although we did not have enough cases, we can say that in tibial plateau fractures anatomic reduction is mandatory. 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J Bone Joint Surg [Am] 64: 352–359",{"doi":1090},"10.2106\u002F00004623-198264030-00004",{"id":17,"text":1092,"url":17,"identifiers":1093},"Dawkins GP, Amis AA (1985) A functional study of the structure of the anterior cruciate ligament related to knee stability, injury mechanisms and prosthetic ligament reconstruction. J Bone Joint Surg [Br] 67: 844",{},{"id":17,"text":1095,"url":17,"identifiers":1096},"Fuss FK (1989) Anatomy of the cruciate ligaments and their function in extension and flexion of the human knee joint. Am J Anat 184: 165–176",{"doi":1097},"10.1002\u002Faja.1001840208",{"id":17,"text":1099,"url":17,"identifiers":1100},"Fuss FK (1991) Optimal replacement of the cruciate ligaments from the functional-anatomical point of view. Acta Anat 140: 260–268",{"doi":1101},"10.1159\u002F000147066",{"id":17,"text":1103,"url":17,"identifiers":1104},"Girgis FG, Marshall JL, Al Monajem ARS (1975) The cruciate ligaments of the knee joint. 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J Trauma 31: 223–229",{"doi":1142},"10.1097\u002F00005373-199102000-00012",{"id":17,"text":1144,"url":17,"identifiers":1145},"Reider B (1991) Arthroscopic anterior cruciate ligament reconstruction patellar tendon. In: Scott WN (ed) Ligament and extensor mechanism injuries of the knee. Mosby Year Book, St Louis, pp 239–254",{},{"id":17,"text":1147,"url":17,"identifiers":1148},"Schutzer SS, Christen S, Jakob RP (1989) Further observations on the isometricity of the anterior cruciate ligament: an anatomical study using a 6-mm diameter replacement. Clin Orthop 242: 247–255",{"doi":1149},"10.1097\u002F00003086-198905000-00025",{"id":17,"text":1151,"url":17,"identifiers":1152},"Stephan FJ, Breul R (1991) Morphometrische Untersuchungen zur objectiven Bestimmung eines linearen Direktbohrkanals zur standardisierten vorderen Kreuzbandplastik oder Rekonstruktion. Anat Anz 173: 299–307",{},{"id":17,"text":1154,"url":17,"identifiers":1155},"Yaru NC, Daniel DM, Penner D (1992) The effect of tibial attachment site on graft impingement in an anterior cruciate ligament reconstruction. Am J Sports Med 20: 217–220",{"doi":1156},"10.1177\u002F036354659202000222",{"id":1158,"createTime":1159,"updateTime":1160,"relativeEntities":1161,"slug":1162,"properties":1163,"entityType":138,"verifyStatus":139,"verifyTime":1160,"verifyNote":140,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":1172,"fullTextUrl":17,"authors":1173,"publicationType":285,"publisherRelationship":1241,"citationCount":17,"citationInfo":17,"publishDate":1274,"publishYear":1275,"citationAnalyzeStatus":16,"lastCitationAnalyze":17,"indexDatabases":17,"openAccess":17,"references":17,"isForceReanalyzing":321},"9e66ebdb-4325-4b7f-8da7-372f87fe5a13","2024-01-03T18:17:47.617+00:00","2024-12-22T23:58:33.934+00:00",[],"Higher-survivorship-following-meniscal-allograft-transplantation-in-less-worn-knees-justifies-earlier-referral-for-symptomatic-patients-experience-from-240-patients",{"references":1164,"abstract":1166,"title":1168,"doi":1170},{"VOID":1165},"Agneskirchner JD, Hurschler C, Stukenborg-Colsman C, Imhoff AB, Lobenhoffer P (2004) Effect of high tibial flexion osteotomy on cartilage pressure and joint kinematics: a biomechanical study in human cadaveric knees. Winner of the AGA-DonJoy Award 2004. Arch Orthop Trauma Surg 124:575–584\nAlentorn-Geli E, Seijas Vázquez R, García Balletbó M, Álvarez Díaz P, Steinbacher G, Cuscó Segarra X, Rius Vilarrubia M, Cugat Bertomeu R (2011) Arthroscopic meniscal allograft transplantation without bone plugs. Knee Surg Sports Traumatol Arthrosc 19:174–182\nAlford W, Cole BJ (2005) Failed ACL reconstruction and meniscus deficiency. Sports Med Arthrosc 13:93–102\nAllen PR, Denham RA, Swan AV (1984) Late degenerative changes after meniscectomy. Factors affecting the knee after operation. J Bone Jt Surg Br 66:666–671\nAmendola A (2007) Knee osteotomy and meniscal transplantation: indications, technical considerations, and results. Sports Med Arthrosc 15:32–38\nAnderson AF, Irrgang JJ, Kocher MS, Mann BJ, Harrast JJ, International Knee Documentation Committee (2006) The international knee documentation committee subjective knee evaluation form: normative data. Am J Sports Med 34:128–135\nArnold MP, Hirschmann MT, Verdonk PCM (2012) See the whole picture: knee preserving therapy needs more than surface repair. Knee Surg Sports Traumatol Arthrosc 20:195–196\nBiant LC, McNicholas MJ, Sprowson AP, Spalding T (2015) The surgical management of symptomatic articular cartilage defects of the knee: consensus statements from United Kingdom knee surgeons. Knee 22:446–449\nBonasia DE, Amendola A (2009) Combined medial meniscal transplantation and high tibial osteotomy. Knee Surg Sports Traumatol Arthrosc 18:870–873\nChalmers PN, Karas V, Sherman SL, Cole BJ (2013) Return to high-level sport after meniscal allograft transplantation. Arthroscopy 29:539–544\nCovall DJ, Wasilewski SA (1992) Roentgenographic changes after arthroscopic meniscectomy: five-year follow-up in patients more than 45 years old. Arthroscopy 8:242–246\nDye SF (1996) The knee as a biologic transmission with an envelope of function: a theory. Clin Orthop Relat Res 325:10–18\nElattar M, Dhollander A, Verdonk R, Almqvist KF, Verdonk P (2011) Twenty-six years of meniscal allograft transplantation: is it still experimental? A meta-analysis of 44 trials. Knee Surg Sports Traumatol Arthrosc 19:147–157\nFarr J, Rawal A, Marberry KM (2007) Concomitant meniscal allograft transplantation and autologous chondrocyte implantation: minimum 2-year follow-up. Am J Sports Med 35:1459–1466\nFujisawa Y, Masuhara K, Shiomi S (1979) The effect of high tibial osteotomy on osteoarthritis of the knee. An arthroscopic study of 54 knee joints. Orthop Clin N Am 10:585–608\nGelber PE, Verdonk P, Getgood AM, Monllau JC (2017) Meniscal transplantation: state of the art. J ISAKOS 2:339–349\nGetgood A, Gelber J, Gortz S, De Young A, Bugbee W (2015) Combined osteochondral allograft and meniscal allograft transplantation: a survivorship analysis. Knee Surg Sports Traumatol Arthrosc 23:946–953\nGetgood A, LaPrade RF, Verdonk P, Gersoff W, Cole B, Spalding T, IMREF Group (2016) International meniscus reconstruction experts forum (IMREF) 2015 consensus statement on the practice of meniscal allograft transplantation. Am J Sports Med 45:1195–1205\nGonzález-Lucena G, Gelber PE, Pelfort X, Tey M, Monllau JC (2010) Meniscal allograft transplantation without bone blocks: a 5- to 8-year follow-up of 33 patients. Arthroscopy 26:1633–1640\nGraf KW, Sekiya JK, Wojtys EM, Arbor A, Michigan USA (2004) Department of Orthopaedic Surgery, University of Michigan Medical Center. Long-term results after combined medial meniscal allograft transplantation and anterior cruciate ligament reconstruction: minimum 8.5-year follow-up study. Arthroscopy 20:129–140\nHarris JD, Hussey K, Saltzman BM, McCormick FM, Wilson H, Abrams GD, Cole BJ (2014) Cartilage repair with or without meniscal transplantation and osteotomy for lateral compartment chondral defects of the knee: case series with minimum 2-year follow-up. Orthop J Sports Med 2:2325967114551528\nHarris JD, Hussey K, Wilson H, Pilz K, Gupta AK, Gomoll A, Cole BJ (2015) Biological knee reconstruction for combined malalignment, meniscal deficiency, and articular cartilage disease. Arthroscopy 31:275–282\nKempshall PJ, Parkinson B, Thomas M, Robb C, Standell H, Getgood A, Spalding T (2015) Outcome of meniscal allograft transplantation related to articular cartilage status: advanced chondral damage should not be a contraindication. Knee Surg Sports Traumatol Arthrosc 23:280–289\nLee B-S, Bin S-I, Kim J-M, Kim W-K, Choi JW (2016) Survivorship after meniscal allograft transplantation according to articular cartilage status. Am J Sports Med 45:1095–1101\nLee B-S, Kim H-J, Lee C-R, Bin S-I, Lee D-H, Kim N-J, Kim C-W (2018) clinical outcomes of meniscal allograft transplantation with or without other procedures: a systematic review and meta-analysis. Am J Sports Med 46:3047–3056\nMahmoud A, Young J, Bullock-Saxton J, Myers P (2018) Meniscal allograft transplantation: the effect of cartilage status on survivorship and clinical outcome. Arthroscopy 34:1871–1876.e1\nMilachowski KA, Weismeier K, Wirth CJ (1989) Homologous meniscus transplantation. Experimental and clinical results. Int Orthop 13:1–11\nMoens K, Dhollander A, Moens P, Verdonk K, Verdonk R, Almqvist KF, Victor J (2014) Meniscal transplantation: still experimental surgery? A review. Acta Orthop Belg 80:403–413\nMyers P, Tudor F (2015) Meniscal allograft transplantation: how should we be doing it? A systematic review. Arthroscopy 31:911–925\nPengas IP, Assiotis A, Nash W, Hatcher J, Banks J, McNicholas MJ (2012) Total meniscectomy in adolescents: a 40-year follow-up. J Bone Jt Surg Br 94-B:1649–1654\nPollard ME, Kang Q, Berg EE (1995) Radiographic sizing for meniscal transplantation. Arthroscopy 11:684–687\nRoos EM, Lohmander LS (2003) The knee injury and osteoarthritis outcome score (KOOS): from joint injury to osteoarthritis. Health Qual Life Outcomes 1:64\nRue J-PH, Yanke AB, Busam ML, McNickle AG, Cole BJ (2008) Prospective evaluation of concurrent meniscus transplantation and articular cartilage repair: minimum 2-year follow-up. Am J Sports Med 36:1770–1778\nRueff D, Nyland J, Kocabey Y, Chang HC, Caborn DNM (2006) Self-reported patient outcomes at a minimum of 5 years after allograft anterior cruciate ligament reconstruction with or without medial meniscus transplantation: an age-, sex-, and activity level-matched comparison in patients aged approximately 50 years. Arthroscopy 22:1053–1062\nSaltzman BM, Bajaj S, Salata M, Daley EL, Strauss E, Verma N, Cole BJ (2012) Prospective long-term evaluation of meniscal allograft transplantation procedure: a minimum of 7-year follow-up. J Knee Surg 25:165–176\nSaltzman BM, Meyer MA, Leroux TS, Gilelis ME, Debot M, Yanke AB, Cole BJ (2018) The influence of full-thickness chondral defects on outcomes following meniscal allograft transplantation: a comparative study. Arthroscopy 34:519–529\nSaltzman BM, Meyer MA, Weber AE, Poland SG, Yanke AB, Cole BJ (2017) Prospective clinical and radiographic outcomes after concomitant anterior cruciate ligament reconstruction and meniscal allograft transplantation at a mean 5-year follow-up. Am J Sports Med 45:550–562\nSmith NA, MacKay N, Costa M, Spalding T (2014) Meniscal allograft transplantation in a symptomatic meniscal deficient knee: a systematic review. Knee Surg Sports Traumatol Arthrosc 23:270–279\nSmith NA, Parkinson B, Hutchinson CE, Costa ML, Spalding T (2015) Is meniscal allograft transplantation chondroprotective? A systematic review of radiological outcomes. Knee Surg Sports Traumatol Arthrosc 2016 24:2923–2935\nSmith NA, Parsons N, Wright D, Hutchinson C, Metcalfe A, Thompson P, Costa ML, Spalding T (2018) A pilot randomized trial of meniscal allograft transplantation versus personalized physiotherapy for patients with a symptomatic meniscal deficient knee compartment. Bone Jt J 100-B:56–63\nSpalding T, Parkinson B, Smith NA, Verdonk P (2015) Arthroscopic meniscal allograft transplantation with soft-tissue fixation through bone tunnels. Arthrosc Tech 4:e559–e563\nStone KR, Walgenbach AW, Turek TJ, Freyer A, Hill MD (2006) Meniscus allograft survival in patients with moderate to severe unicompartmental arthritis: a 2- to 7-year follow-up. Arthroscopy 22:469–478\nTegner Y, Lysholm J (1985) Rating systems in the evaluation of knee ligament injuries. Clin Orthop Relat Res 198:43–49\nvan Arkel ER, de Boer HH (1995) Human meniscal transplantation. Preliminary results at 2 to 5-year follow-up. J Bone Jt Surg Br 77:589–595\nVerdonk PCM, Demurie A, Almqvist KF, Veys EM, Verbruggen G, Verdonk R (2006) Transplantation of viable meniscal allograft. JBJS Essential Surg Tech 88:109–118\nVerdonk PCM, Verstraete KL, Almqvist KF, De Cuyper K, Veys EM, Verbruggen G, Verdonk R (2006) Meniscal allograft transplantation: long-term clinical results with radiological and magnetic resonance imaging correlations. Knee Surg Sports Traumatol Arthrosc 14:694–706\nWirth CJ, Peters G, Milachowski KA, Weismeier KG, Kohn D (2002) Long-term results of meniscal allograft transplantation. Am J Sports Med 30:174–181\nZaffagnini S, Grassi A, Marcheggiani Muccioli GM, Benzi A, Roberti di Sarsina T, Signorelli C, Raggi F, Marcacci M (2016) Is sport activity possible after arthroscopic meniscal allograft transplantation? Midterm results in active patients. Am J Sports Med 44:625–632",{"EN":1167},"To analyse the clinical outcome and survivorship of meniscal allograft transplantation (MAT), performed in a single unit, specifically to assess the impact of concomitant operations and the influence of articular cartilage lesions on outcome. A prospective case series analysis of 240 patients undergoing MAT with follow-up greater than 12 months (range 1–10 years) was performed. Group A represented patients with good chondral surfaces (ICRS 0–3A); Group B had good chondral surfaces with concomitant realignment osteotomy. Group C had good chondral surfaces with ACL reconstruction performed at the same time. Groups D and E had bare bone on one or both surfaces respectively. Kaplan–Meier survivorship and PROMS including Lysholm, KOOS, Tegner, and IKDC subjective scores were analysed. Overall survivorship was 96.7% at 1 year, 87% at 5 years and 82.2% at 7 years. Groups A–C (knees without significant chondral damage) had significantly improved survivorship (95% at 5 years) compared to Groups D, E (full-thickness chondral wear) with 77% survivorship at 5 years. Survivorship and PROMS were equivalent between Groups A–C. Groups D and E had similar PROMS to Group A, but did have a higher failure rate. Overall 27% required further operative intervention. Meniscal transplantation is clinically effective in treating patients with symptomatic meniscal deficiency. Where indicated, the addition of osteotomy or ACL reconstruction achieves results similar to patients undergoing simple meniscal transplantation in stable and normally aligned knees. Survivorship is lower in patients with full-thickness chondral loss and future treatments should, therefore, be directed at improving success in this at-risk group. The results support encouragement for earlier referral of symptomatic patients to a specialist meniscal reconstruction centre before a significant chondral damage is sustained. III.",{"EN":1169},"Higher survivorship following meniscal allograft transplantation in less worn knees justifies earlier referral for symptomatic patients: experience from 240 patients",{"VOID":1171},"10.1007\u002Fs00167-019-05459-6","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00167-019-05459-6",[1174,1190,1202,1214,1229],{"id":1175,"sortIndex":113,"researcher":17,"roles":1176,"affiliations":1177,"properties":1187},"d14a4ded-e7b3-46e3-b5ef-a4306e959bc8",[146],[1178],{"id":17,"sortIndex":18,"affiliation":1179,"properties":17},{"id":1180,"createTime":1181,"updateTime":1181,"relativeEntities":1182,"slug":1183,"properties":1184,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"0e4e2916-ea40-4e11-8228-83d47ac92b81","2024-04-15T21:27:04.333+00:00",[],"Department-of-Orthopaedics-University-Hospital-Coventry-and-Warwickshire-NHS-Trust-Coventry-UK",{"title":1185},{"EN":1186},"Department of Orthopaedics, University Hospital Coventry and Warwickshire NHS Trust, Coventry, UK",{"title":1188},{"VI":1189},"Nick Smith",{"id":1191,"sortIndex":112,"researcher":17,"roles":1192,"affiliations":1193,"properties":1199},"156a2309-2356-4750-b647-ed904937215d",[146],[1194],{"id":17,"sortIndex":18,"affiliation":1195,"properties":17},{"id":1180,"createTime":1181,"updateTime":1181,"relativeEntities":1196,"slug":1183,"properties":1197,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1198},{"EN":1186},{"title":1200},{"VI":1201},"Laura Asplin",{"id":1203,"sortIndex":215,"researcher":17,"roles":1204,"affiliations":1205,"properties":1211},"e527ae21-0970-433b-bcd3-cf3f9801ae33",[146],[1206],{"id":17,"sortIndex":18,"affiliation":1207,"properties":17},{"id":1180,"createTime":1181,"updateTime":1181,"relativeEntities":1208,"slug":1183,"properties":1209,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1210},{"EN":1186},{"title":1212},{"VI":1213},"Tim Spalding",{"id":1215,"sortIndex":18,"researcher":17,"roles":1216,"affiliations":1217,"properties":1226},"b63f9635-cea7-4ec0-8d1a-815134ab1d15",[146],[1218],{"id":17,"sortIndex":18,"affiliation":1219,"properties":17},{"id":1220,"createTime":1221,"updateTime":1221,"relativeEntities":1222,"slug":17,"properties":1223,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"fd4f99f1-3740-48b2-ae3b-8a75b01fef67","2024-01-29T21:32:45.952+00:00",[],{"title":1224},{"VI":1225},"Nottingham Elective Orthopaedic Services, Nottingham University Hospitals NHS Trust, Nottingham, UK",{"title":1227},{"VI":1228},"Benjamin Bloch",{"id":1230,"sortIndex":261,"researcher":17,"roles":1231,"affiliations":1232,"properties":1238},"5e47c4fb-4217-4f7c-a965-f0c4f2408798",[146],[1233],{"id":17,"sortIndex":18,"affiliation":1234,"properties":17},{"id":1180,"createTime":1181,"updateTime":1181,"relativeEntities":1235,"slug":1183,"properties":1236,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1237},{"EN":1186},{"title":1239},{"VI":1240},"Peter Thompson",{"url":1172,"publisher":1242,"properties":1269},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1243,"slug":10,"properties":1244,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":1247,"manageAffiliations":1248,"indexDatabases":1249,"url":17,"thumbnailPath":17,"statistic":1264,"gsStatistic":17,"type":17,"analyzePriority":17},[],{"issn":1245,"title":1246},{"VOID":13},{"EN":10},[],[],[1250,1257],{"id":90,"indexDatabase":1251,"url":103,"indexYears":104,"academicFieldIds":1256,"indexDatabaseRanking":109},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1252,"label":1253,"description":1254,"key":100,"publicationTags":1255,"standard":17},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108],{"id":69,"indexDatabase":1258,"url":84,"indexYears":17,"academicFieldIds":1263,"indexDatabaseRanking":17},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":1259,"label":1260,"description":1261,"key":80,"publicationTags":1262,"standard":17},[],{"EN":76,"VI":76},{"VI":78,"EN":79},[82,83],[86,87,88],{"impactFactor":18,"impactFactorByYear":1265,"i10Index":112,"i10IndexLast5Year":18,"totalPublication":113,"totalPublicationByYear":1266,"totalCitation":115,"totalCitationByYear":1267,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":1268,"hindexLast5Year":112,"hindex":112},{},{"2003":113},{"2003":115},{"2003":117},{"volume":1270,"pages":1272},{"VOID":1271},"27",{"VOID":1273},"1891-1899","2019-03-21",2019,{"id":1277,"createTime":1278,"updateTime":1279,"relativeEntities":1280,"slug":1281,"properties":1282,"entityType":138,"verifyStatus":139,"verifyTime":1279,"verifyNote":140,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"primaryUrl":1291,"fullTextUrl":17,"authors":1292,"publicationType":285,"publisherRelationship":1358,"citationCount":17,"citationInfo":17,"publishDate":1391,"publishYear":1392,"citationAnalyzeStatus":16,"lastCitationAnalyze":17,"indexDatabases":17,"openAccess":17,"references":17,"isForceReanalyzing":321},"5a726893-f16d-4055-abaa-f754e44171f6","2023-12-20T05:28:49.624+00:00","2025-02-10T23:58:01.388+00:00",[],"Low-re-dislocation-rate-following-Bereiter-trochleoplasty-for-recurrent-patellar-instability-with-severe-trochlear-dysplasia",{"references":1283,"abstract":1285,"title":1287,"doi":1289},{"VOID":1284},"Albee FH (1915) The bone graft wedge in the treatment of habitual dislocation of the patella. Med Rec 88:257–259\nAmis AA, Oguz C, Bull AMJ, Senavongse W, Dejour D (2008) The effect of trochleoplasty on patellar stability and kinematics: a biomechanical study in vitro. J Bone Jt Surg Br 90:864–869\nBalcarek P, Rehn S, Howells NR, Eldridge JD, Kita K, Dejour D, Nelitz M, Banke IJ, Lambrecht D, Harden M, Friede T (2017) Results of medial patellofemoral ligament reconstruction compared with trochleoplasty plus individual extensor apparatus balancing in patellar instability caused by severe trochlear dysplasia: a systematic review and meta-analysis. Knee Surg Sports Traumatol Arthrosc 25:3869–3877\nBereiter H, Gautier E (1994) Die Trochleaplastik als chirurgische Therapie der rezidivierenden Patellaluxation bei Trochleadysplasie des Femurs. Arthroskopie 7:281–286\nBiedert RM, Albrecht S (2006) The patellotrochlear index: a new index for assessing patellar height. Knee Surg Sports Traumatol Arthr 14:707–712\nCamp CL, Stuart MJ, Krych AJ, Levy BA, Bond JR, Collins MS, Dahm DL (2013) CT and MRI measurements of tibial tubercle-trochlear groove distances are not equivalent in patients with patellar instability. Am J Sports Med 41:1835–1840\nCarstensen SE, Feeley SM, Diduch DR (2019) Manipulation under anesthesia with lysis of adhesions is effective in arthrofibrosis after sulcus-deepening trochleoplasty: a prospective study. Orthop J Sports Med 7:2325967119864868\nDavies MR, Allahabadi S, Diab TE, Freshman RD, Pandya NK, Feeley BT, Lansdown DA (2020) Sulcus-deepening trochleoplasty as an isolated or combined treatment strategy for patellar instability and trochlear dysplasia: a systematic review. Arthrosc Sports Med Rehabil 2:e661–e669\nDeJour D, Saggin P (2010) The sulcus deepening trochleoplasty—the Lyon’s procedure. Int Orthop 34:311–316\nDejour H, Walch G, Nove-Josserand L, Guier C (1994) Factors of patellar instability: an anatomic radiographic study. Knee Surg Sports Traumatol Arthrosc 2:19–26\nDelgado DA, Lambert BS, Boutris N, McCulloch PC, Robbins AB, Moreno MR, Harris JD (2018) Validation of digital visual analog scale pain scoring with a traditional paper-based visual analog scale in adults. J Am Acad Orthop Surg Glob Res Rev 2:e088\nGoutallier D, Raou D, Van Driessche S (2002) Retro-trochlear wedge reduction trochleoplasty for the treatment of painful patella syndrome with protruding trochleae. Technical note and early results. Rev Chir Orthop Reparatrice Appar Mot 88:678–685\nHiemstra LA, Page JL, Kerslake S (2019) Patient-reported outcome measures for patellofemoral instability: a critical review. Curr Rev Musculoskelet Med 12:124–137\nvon Knoch F, Böhm T, Bürgi ML, von Knoch M, Bereiter H (2006) Trochleaplasty for recurrent patellar dislocation in association with trochlear dysplasia. J Bone Jt Surg Br 88-B:1331–1335\nLafave MR, Hiemstra L, Kerslake S (2016) Factor analysis and item reduction of the banff patella instability instrument (BPII): introduction of BPII 2.0. Am J Sports Med 44:2081–2086\nLevy BJ, Tanaka MJ, Fulkerson JP (2021) Current concepts regarding patellofemoral trochlear dysplasia. Am J Sports Med 49:1642–1650\nLiu JN, Brady JM, Kalbian IL, Strickland SM, Ryan CB, Nguyen JT, Shubin Stein BE (2018) Clinical outcomes after isolated medial patellofemoral ligament reconstruction for patellar instability among patients with trochlear dysplasia. Am J Sports Med 46:883–889\nLongo UG, Vincenzo C, Mannering N, Ciuffreda M, Salvatore G, Berton A, Denaro V (2018) Trochleoplasty techniques provide good clinical results in patients with trochlear dysplasia. Knee Surg Sports Traumatol Arthrosc 26:2640–2658\nMcNamara I, Bua N, Smith TO, Ali K, Donell ST (2015) Deepening trochleoplasty with a thick osteochondral flap for patellar instability: clinical and functional outcomes at a mean 6-year follow-up. Am J Sports Med 43:2706–2713\nMetcalfe AJ, Clark DA, Kemp MA, Eldridge JD (2017) Trochleoplasty with a flexible osteochondral flap: results from an 11-year series of 214 cases. Bone Jt J 99-B:344–350\nRen B, Zhang X, Zhang L, Zhang M, Liu Y, Tian B, Zhang B, Zheng J (2019) Isolated trochleoplasty for recurrent patellar dislocation has lower outcome and higher residual instability compared with combined MPFL and trochleoplasty: a systematic review. Arch Orthop Trauma Surg 139:1617–1624\nRouanet T, Gougeon F, Fayard JM, Rémy F, Migaud H, Pasquier G (2015) Sulcus deepening trochleoplasty for patellofemoral instability: a series of 34 cases after 15 years postoperative follow-up. Orthop Traumatol Surg Res 101:443–447\nSenavongse W, Amis AA (2005) The effects of articular, retinacular, or muscular deficiencies on patellofemoral joint stability: a biomechanical study in vitro. J Bone Jt Surg Br 87:577–582\nTesta EA, Camathias C, Amsler F, Henle P, Friederich NF, Hirschmann MT (2017) Surgical treatment of patellofemoral instability using trochleoplasty or MPFL reconstruction: a systematic review. Knee Surg Sports Traumatol Arthrosc 25:2309–2320",{"EN":1286},"Trochlear dysplasia is an independent risk factor for recurrent patellar instability with evidence demonstrating its presence in up to 85% of patients with patellar instability. Severe trochlear dysplasia can be treated with trochleoplasty to improve engagement of the patella in the trochlear groove and prevent future dislocations. The aim of this study was to determine the clinical outcome of Bereiter trochleoplasty in patients with recurrent patellar instability and severe trochlear dysplasia. This was a retrospective case series of all trochleoplasties performed in our institution from 2008–2019. All clinical records and pre-operative MRI scans were reviewed to assess for trochlear dysplasia, tibial tuberosity to trochlear groove distance (TTTG) and patella height using patella trochlear index (PTI). Trochlear dysplasia was classified using Dejour classification. Incidence of re-dislocation, infection, arthrofibrosis, chondral necrosis and re-operation were recorded. All patients were invited to complete a post-operative visual analog score for pain (VAS-P) and Banff Patella Instability Instrument (BPII). Fifty-eight trochleoplasties were performed in fifty patients during this period. All trochleoplasties were combined with additional procedures. 93% had concomitant medial patellofemoral ligament (MPFL) reconstructions and 47% had tibial tuberosity transfer. The mean follow-up period was 36.8 months. The rate of dislocation and arthrofibrosis were 5% each. There were no chondral necrosis or nonunion. The mean post-operative BPII was 58.4 and VAS-P was 30.4. Bereiter trochleoplasty, often combined with MPFL reconstruction and\u002For tibial tuberosity transfer results in low re-dislocation and complication rate. IV.",{"EN":1288},"Low re-dislocation rate following Bereiter trochleoplasty for recurrent patellar instability with severe trochlear dysplasia",{"VOID":1290},"10.1007\u002Fs00167-022-07201-1","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs00167-022-07201-1",[1293,1310,1322,1334,1346],{"id":1294,"sortIndex":113,"researcher":17,"roles":1295,"affiliations":1296,"properties":1307},"73ed99bd-00a6-4bb7-bfd9-104da32c8c6a",[146],[1297],{"id":17,"sortIndex":18,"affiliation":1298,"properties":17},{"id":1299,"createTime":1300,"updateTime":1301,"relativeEntities":1302,"slug":1303,"properties":1304,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"de058270-c358-4240-81b9-dc5a878427a3","2023-12-11T09:49:26.757+00:00","2024-10-10T11:40:47.443+00:00",[],"Royal-Derby-Hospital-Derby-UK",{"title":1305},{"VI":1306},"Royal Derby Hospital, Derby, UK",{"title":1308},{"VI":1309},"Francisco Barbosa",{"id":1311,"sortIndex":18,"researcher":17,"roles":1312,"affiliations":1313,"properties":1319},"6efcafa9-289e-4256-8b63-029f955b110a",[146],[1314],{"id":17,"sortIndex":18,"affiliation":1315,"properties":17},{"id":1299,"createTime":1300,"updateTime":1301,"relativeEntities":1316,"slug":1303,"properties":1317,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1318},{"VI":1306},{"title":1320},{"VI":1321},"Jimmy Ng",{"id":1323,"sortIndex":261,"researcher":17,"roles":1324,"affiliations":1325,"properties":1331},"b952c996-765d-43a7-987b-03bc419d12da",[146],[1326],{"id":17,"sortIndex":18,"affiliation":1327,"properties":17},{"id":1299,"createTime":1300,"updateTime":1301,"relativeEntities":1328,"slug":1303,"properties":1329,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1330},{"VI":1306},{"title":1332},{"VI":1333},"Navjot Bhangoo",{"id":1335,"sortIndex":215,"researcher":17,"roles":1336,"affiliations":1337,"properties":1343},"8568d4df-dbff-4d1d-a777-99aef7c7129a",[146],[1338],{"id":17,"sortIndex":18,"affiliation":1339,"properties":17},{"id":1299,"createTime":1300,"updateTime":1301,"relativeEntities":1340,"slug":1303,"properties":1341,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1342},{"VI":1306},{"title":1344},{"VI":1345},"Guido Geutjens",{"id":1347,"sortIndex":112,"researcher":17,"roles":1348,"affiliations":1349,"properties":1355},"0c1fb2e3-664c-41cc-9d77-84c17d821423",[146],[1350],{"id":17,"sortIndex":18,"affiliation":1351,"properties":17},{"id":1299,"createTime":1300,"updateTime":1301,"relativeEntities":1352,"slug":1303,"properties":1353,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},[],{"title":1354},{"VI":1306},{"title":1356},{"VI":1357},"John Broomfield",{"url":1291,"publisher":1359,"properties":1386},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1360,"slug":10,"properties":1361,"entityType":15,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18,"subjectFields":1364,"manageAffiliations":1365,"indexDatabases":1366,"url":17,"thumbnailPath":17,"statistic":1381,"gsStatistic":17,"type":17,"analyzePriority":17},[],{"issn":1362,"title":1363},{"VOID":13},{"EN":10},[],[],[1367,1374],{"id":90,"indexDatabase":1368,"url":103,"indexYears":104,"academicFieldIds":1373,"indexDatabaseRanking":109},{"id":92,"createTime":93,"updateTime":94,"relativeEntities":1369,"label":1370,"description":1371,"key":100,"publicationTags":1372,"standard":17},[],{"EN":97,"VI":97},{"EN":97,"VI":99},[102],[106,107,108],{"id":69,"indexDatabase":1375,"url":84,"indexYears":17,"academicFieldIds":1380,"indexDatabaseRanking":17},{"id":71,"createTime":72,"updateTime":73,"relativeEntities":1376,"label":1377,"description":1378,"key":80,"publicationTags":1379,"standard":17},[],{"EN":76,"VI":76},{"VI":78,"EN":79},[82,83],[86,87,88],{"impactFactor":18,"impactFactorByYear":1382,"i10Index":112,"i10IndexLast5Year":18,"totalPublication":113,"totalPublicationByYear":1383,"totalCitation":115,"totalCitationByYear":1384,"totalCitationPerPublication":117,"totalCitationPerPublicationByYear":1385,"hindexLast5Year":112,"hindex":112},{},{"2003":113},{"2003":115},{"2003":117},{"volume":1387,"pages":1389},{"VOID":1388},"31",{"VOID":1390},"2494-2499","2022-10-21",2022,{"id":1394,"createTime":1395,"updateTime":1396,"relativeEntities":1397,"slug":1398,"properties":1399,"entityType":138,"verifyStatus":139,"verifyTime":1396,"verifyNote":140,"syncStatus":16,"languages":1411,"translateLanguages":17,"viewCount":18,"primaryUrl":1412,"fullTextUrl":17,"authors":1413,"publicationType":285,"publisherRelationship":1486,"citationCount":215,"citationInfo":1520,"publishDate":1522,"publishYear":1523,"citationAnalyzeStatus":16,"lastCitationAnalyze":17,"indexDatabases":17,"openAccess":17,"references":1524,"isForceReanalyzing":321},"49e7c197-dfef-4ade-a4fd-d62bff5bb6fa","2024-04-16T13:17:59.527+00:00","2025-01-30T23:57:50.121+00:00",[],"Medial-pivot-based-total-knee-arthroplasty-achieves-better-clinical-outcomes-than-posterior-stabilised-total-knee-arthroplasty",{"keywords":1400,"openalex":1401,"abstract":1403,"title":1405,"pm":1407,"doi":1409},{},{"VOID":1402},"W4295878165",{"EN":1404},"\u003Cjats:title>Abstract\u003C\u002Fjats:title>\u003Cjats:sec>\n                \u003Cjats:title>Purpose\u003C\u002Fjats:title>\n                \u003Cjats:p>Stability in the sagittal plane, particularly regarding anterior cruciate ligament compensation, and postoperative functionality and satisfaction remain issues in total knee arthroplasty. Therefore, this prospective study compared the clinical outcomes between medial-pivot-based and posterior-stabilised total knee arthroplasty based on anterior translation and clinical scores.\u003C\u002Fjats:p>\n              \u003C\u002Fjats:sec>\u003Cjats:sec>\n                \u003Cjats:title>Methods\u003C\u002Fjats:title>\n                \u003Cjats:p>To assess outcomes of total knee arthroplasty for varus osteoarthritis, the anterior translation distance of the tibia relative to the femur was measured at 30 and 60° of flexion using a KS measure Arthrometer at 6 months postoperatively. The 2011 Knee Society Score, Forgotten Joint Score, visual analogue scale for pain, and range of motion were assessed at 6 months and 1 year postoperatively. The correlations among each score, anterior translation distance, range of motion, and visual analogue scale score for pain were investigated.\u003C\u002Fjats:p>\n              \u003C\u002Fjats:sec>\u003Cjats:sec>\n                \u003Cjats:title>Results\u003C\u002Fjats:title>\n                \u003Cjats:p>The medial-pivot and posterior-stabilised groups comprised 70 and 51 patients, respectively. The medial-pivot group exhibited a significantly shorter anterior translation distance at 60° flexion than the posterior-stabilised group. Furthermore, the medial-pivot group achieved significantly better outcomes regarding the visual analogue scale for pain, 2011 Knee Society Score, and Forgotten Joint Score than the posterior-stabilised group. A significant negative correlation was observed between the anterior translation distance and the function score of the 2011 Knee Society Score, whereas a significant positive correlation was found between the anterior translation distance and flexion angle, and between the extension angle and score of the Forgotten Joint Score or 2011 Knee Society Score. Significant negative correlations were also found between the pain visual analogue scale and both the 2011 Knee Society Score and Forgotten Joint Score.\u003C\u002Fjats:p>\n              \u003C\u002Fjats:sec>\u003Cjats:sec>\n                \u003Cjats:title>Conclusion\u003C\u002Fjats:title>\n                \u003Cjats:p>In total knee arthroplasty for osteoarthritis, the medial-pivot group displayed a shorter anterior translation distance than the posterior-stabilised group at 6 months postoperatively. The visual analogue scale score for pain was also significantly lower in the medial-pivot group than that in the posterior-stabilised group at both 6 months and 1 year postoperatively. Because a correlation was observed between the anterior translation distance and the function score, medial-pivot-based total knee arthroplasty was considered to significantly improve postoperative function compared to posterior-stabilised total knee arthroplasty.\u003C\u002Fjats:p>\n              \u003C\u002Fjats:sec>",{"EN":1406},"Medial pivot-based total knee arthroplasty achieves better clinical outcomes than posterior-stabilised total knee arthroplasty",{"VOID":1408},"36089624",{"VOID":1410},"10.1007\u002Fs00167-022-07149-2",[952],"https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs00167-022-07149-2",[1414,1435,1452,1469],{"id":1415,"sortIndex":261,"researcher":17,"roles":1416,"affiliations":1417,"properties":1428},"f936b33c-a8ff-405a-892b-31ca9ee2f6f9",[],[1418],{"id":1419,"sortIndex":18,"affiliation":1420,"properties":17},"8e69b098-6b47-41a9-a026-efee335ae284",{"id":1421,"createTime":1422,"updateTime":1422,"relativeEntities":1423,"slug":1424,"properties":1425,"entityType":54,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"dc5117da-feca-4a53-8967-1192a0222712","2024-04-16T13:17:59.537+00:00",[],"Nagoya-Joint-Replacement-Orthopaedic-Clinic-7-Iponbashi-Takadaji-Kita-Nagoya-Aichi-481-0011-Japan",{"title":1426},{"EN":1427},"Nagoya Joint Replacement Orthopaedic Clinic, 7 Iponbashi, Takadaji, Kita-Nagoya, Aichi, 481-0011, 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MK, Elsherif ME, Bakr H, Mahran M, Othman MHM, Khalifa Y (2019) All types of component malrotation affect the early patient-reported outcome measures after total knee arthroplasty. Knee Surg Relat Res 31(1):5",{"doi":1528},"10.1186\u002Fs43019-019-0006-2",{"id":17,"text":1530,"url":17,"identifiers":1531},"Akagi M, Mori S, Nishimura S, Nishimura A, Asano T, Hamanishi C (2005) Variability of extraarticular tibial rotation references for total knee arthroplasty. Clin Orthop Relat Res 436:172–176",{"doi":1532},"10.1097\u002F01.blo.0000160027.52481.32",{"id":17,"text":1534,"url":17,"identifiers":1535},"Bae DK, Cho SD, Im SK, Song SJ (2016) Comparison of midterm clinical and radiographic results between total knee arthroplasties using medial pivot and posterior-stabilized prosthesis-a matched pair analysis. J Arthroplast 31(2):419–424",{"doi":1536},"10.1016\u002Fj.arth.2015.09.038",{"id":17,"text":1538,"url":17,"identifiers":1539},"Batra S, Malhotra R, Kumar V, Srivastava DN, Backstein D, Pandit H (2021) Superior patient satisfaction in medial pivot as compared to posterior-stabilized total knee arthroplasty: a prospective randomized study. Knee Surg Sports Traumatol Arthrosc 29(11):3633–3640",{"doi":1540},"10.1007\u002Fs00167-020-06343-4",{"id":17,"text":1542,"url":17,"identifiers":1543},"Behrend H, Giesinger K, Giesinger JM, Kuster MS (2012) The “forgotten joint” as the ultimate goal in joint arthroplasty: validation of a new patient-reported outcome measure. J Arthroplast 27(3):430-436.e1",{"doi":1544},"10.1016\u002Fj.arth.2011.06.035",{"id":17,"text":1546,"url":17,"identifiers":1547},"Benjamin B, Pietrzak JRT, Tahmassebi J, Haddad FS (2018) A functional comparison of medial pivot and condylar knee designs based on patient outcomes and parameters of gait. Bone Jt J 100-B(1 supple A):76–82",{"doi":1548},"10.1302\u002F0301-620X.100B1.BJJ-2017-0605.R1",{"id":17,"text":1550,"url":17,"identifiers":1551},"Bordini B, Ancarani C, Fitch DA (2016) Long-term survivorship of a medial-pivot total knee system compared with other cemented designs in an arthroplasty registry. J Orthop Surg Res 11:44",{"doi":1552},"10.1186\u002Fs13018-016-0388-8",{"id":17,"text":1554,"url":17,"identifiers":1555},"Bourne RB, Chesworth BM, Davis AM, Mahomed NN, Charron KDJ (2010) Patient satisfaction after total knee arthroplasty: who is satisfied and who is not? Clin Orthop Relat Res 468(1):57–63",{"doi":1556},"10.1007\u002Fs11999-009-1119-9",{"id":17,"text":1558,"url":17,"identifiers":1559},"Cacciola G, Mancino F, De Meo F, Di Matteo V, Sculco PK, Cavaliere P et al (2021) Mid-term survivorship and clinical outcomes of the medial stabilized systems in primary total knee arthroplasty: a systematic review. J Orthop 24:157–164",{"doi":1560},"10.1016\u002Fj.jor.2021.02.022",{"id":17,"text":1562,"url":17,"identifiers":1563},"Choi WC, Ryu KJ, Lee S, Seong SC, Lee MC (2013) Painful patellar clunk or crepitation of contemporary knee prostheses. Clin Orthop Relat Res 471(5):1512–1522",{"doi":1564},"10.1007\u002Fs11999-012-2652-5",{"id":17,"text":1566,"url":17,"identifiers":1567},"Dowsey MM, Gould DJ, Spelman T, Pandy MG, Choong PF (2020) A randomized controlled trial comparing a medial stabilized total knee prosthesis to a cruciate retaining and posterior-stabilized design: a report of the clinical and functional outcomes following total knee replacement. J Arthroplast 35(6):1583-1590.e2",{"doi":1568},"10.1016\u002Fj.arth.2020.01.085",{"id":17,"text":1570,"url":17,"identifiers":1571},"Edelstein AI, Bhatt S, Wright-Chisem J, Sullivan R, Beal M, Manning DW (2020) The effect of implant design on sagittal plane stability: a randomized trial of medial- versus posterior-stabilized total knee arthroplasty. J Knee Surg 33(5):452–458",{"doi":1572},"10.1055\u002Fs-0039-1678524",{"id":17,"text":1574,"url":17,"identifiers":1575},"Gray HA, Guan S, Young TJ, Dowsey MM, Choong PF, Pandy MG (2020) Comparison of posterior-stabilized, cruciate-retaining, and medial-stabilized knee implant motion during gait. J Orthop Res 38(8):1753–1768",{"doi":1576},"10.1002\u002Fjor.24613",{"id":17,"text":1578,"url":17,"identifiers":1579},"Ingelsrud LH, Roos EM, Terluin B, Gromov K, Husted H, Troelsen A (2018) Minimal important change values for the Oxford Knee Score and the Forgotten Joint Score at 1 year after total knee replacement. Acta Orthop 89(5):541–547",{"doi":1580},"10.1080\u002F17453674.2018.1480739",{"id":17,"text":1582,"url":17,"identifiers":1583},"Ishii Y, Matsuda Y, Ishii R, Sakata S, Omori G (2005) Sagittal laxity in vivo after total knee arthroplasty. Arch Orthop Trauma Surg 125(4):249–253",{"doi":1584},"10.1007\u002Fs00402-004-0712-3",{"id":17,"text":1586,"url":17,"identifiers":1587},"Jacobs CA, Christensen CP, Karthikeyan T (2016) An intact anterior cruciate ligament at the time of posterior cruciate ligament-retaining total knee arthroplasty was associated with reduced patient satisfaction and inferior pain and stair function. J Arthroplast 31(8):1732–1735",{"doi":1588},"10.1016\u002Fj.arth.2016.01.026",{"id":17,"text":1590,"url":17,"identifiers":1591},"Jones CW, Jacobs H, Shumborski S, Talbot S, Redgment A, Brighton R et al (2020) Sagittal stability and implant design affect patient reported outcomes after total knee arthroplasty. J Arthroplast 35(3):747–751",{"doi":1592},"10.1016\u002Fj.arth.2019.10.020",{"id":17,"text":1594,"url":17,"identifiers":1595},"Kim YH, Park JW, Kim JS (2017) Clinical outcome of medial pivot compared with press-fit condylar sigma cruciate-retaining mobile-bearing total knee arthroplasty. J Arthroplast 32(10):3016–3023",{"doi":1596},"10.1016\u002Fj.arth.2017.05.022",{"id":17,"text":1598,"url":17,"identifiers":1599},"Kim YH, Yoon SH, Kim JS (2009) Early outcome of TKA with a medial pivot fixed-bearing prosthesis is worse than with a PFC mobile-bearing prosthesis. Clin Orthop Relat Res 467(2):493–503",{"doi":1600},"10.1007\u002Fs11999-008-0221-8",{"id":17,"text":1602,"url":17,"identifiers":1603},"Landis JR, Koch GG (1977) The measurement of observer agreement for categorical data. Biometrics 33(1):159–174",{"doi":1604},"10.2307\u002F2529310",{"id":17,"text":1606,"url":17,"identifiers":1607},"Lee QJ, Wai Yee EC, Wong YC (2020) No difference in patient preference for medial pivot versus posterior-stabilized design in staged bilateral total knee arthroplasty: a prospective study. 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