Posterior tibial slope and meniscal slope correlate with in vivo tibial internal rotation during running and drop jump

Akoto R, Alm L, Drenck TC, Frings J, Krause M, Frosch KH (2020) Slope-correction osteotomy with lateral extra-articular tenodesis and revision anterior cruciate ligament reconstruction is highly effective in treating high-grade anterior knee laxity. Am J Sports Med 48:3478–3485

Article  PubMed  PubMed Central  Google Scholar 

Anderst W, Zauel R, Bishop J, Demps E, Tashman S (2009) Validation of three-dimensional model-based tibio-femoral tracking during running. Med Eng Phys 31:10–16

Article  PubMed  Google Scholar 

Bates NA, Mejia Jaramillo MC, Vargas M, McPherson AL, Schilaty ND, Nagelli CV, Krych AJ, Hewett TE (2019) External loads associated with anterior cruciate ligament injuries increase the correlation between tibial slope and ligament strain during in vitro simulations of in vivo landings. Clin Biomech 61:84–94

Article  Google Scholar 

Bates NA, Nesbitt RJ, Shearn JT, Myer GD, Hewett TE (2016) Posterior tibial slope angle correlates with peak sagittal and frontal plane knee joint loading during robotic simulations of athletic tasks. Am J Sports Med 44:1762–1770

Article  PubMed  PubMed Central  Google Scholar 

Bernhardson AS, Aman ZS, Dornan GJ, Kemler BR, Storaci HW, Brady AW, Nakama GY, LaPrade RF (2019) Tibial slope and its effect on force in anterior cruciate ligament grafts: anterior cruciate ligament force increases linearly as posterior tibial slope increases. Am J Sports Med 47:296–302

Article  PubMed  Google Scholar 

Beynnon BD, Hall JS, Sturnick DR, Desarno MJ, Gardner-Morse M, Tourville TW, Smith HC, Slauterbeck JR, Shultz SJ, Johnson RJ, Vacek PM (2014) Increased slope of the lateral tibial plateau subchondral bone is associated with greater risk of noncontact ACL injury in females but not in males: a prospective cohort study with a nested, matched case-control analysis. Am J Sports Med 42:1039–1048

Article  PubMed  PubMed Central  Google Scholar 

Cohen J (2013) Statistical Power Analysis for the Behavioral Sciences. Routledge, London. https://doi.org/10.4324/9780203771587

Book  Google Scholar 

Dejour H, Bonnin M (1994) Tibial translation after anterior cruciate ligament rupture. Two radiological tests compared. J Bone Joint Surg Br 76:745–749

Article  CAS  PubMed  Google Scholar 

Elmansori A, Lording T, Dumas R, Elmajri K, Neyret P, Lustig S (2017) Proximal tibial bony and meniscal slopes are higher in ACL injured subjects than controls: a comparative MRI study. Knee Surg Sport Traumatol Arthrosc 25:1598–1605

Article  Google Scholar 

Gale T, Anderst W (2019) Asymmetry in healthy adult knee kinematics revealed through biplane radiography of the full gait cycle. J Orthop Res 37:609–614

Article  CAS  PubMed  Google Scholar 

Gale T, Anderst W (2020) Knee kinematics of healthy adults measured using biplane radiography. J Biomech Eng 142:1–8

Article  Google Scholar 

Giffin JR, Vogrin TM, Zantop T, Woo SLY, Harner CD (2004) Effects of increasing tibial slope on the biomechanics of the knee. Am J Sports Med 32:376–382

Article  PubMed  Google Scholar 

Grassi A, Pizza N, Zambon Bertoja J, Macchiarola L, Lucidi GA, Dal Fabbro G, Zaffagnini S (2021) Higher risk of contralateral anterior cruciate ligament (ACL) injury within 2 years after ACL reconstruction in under-18-year-old patients with steep tibial plateau slope. Knee Surg Sport Traumatol Arthrosc 29:1690–1700

Article  Google Scholar 

Grood ES, Suntay WJ (1983) A joint coordinate system for the clinical description of three-dimensional motions: application to the knee. J Biomech Eng 105:136–144

Article  CAS  PubMed  Google Scholar 

Hashemi J, Chandrashekar N, Mansouri H, Gill B, Slauterbeck JR, Schutt RC, Dabezies E, Beynnon BD (2010) Shallow medial tibial plateau and steep medial and lateral tibial slopes: New risk factors for anterior cruciate ligament injuries. Am J Sports Med 38:54–62

Article  PubMed  Google Scholar 

Hohmann E, Tetsworth K, Glatt V, Ngcelwane M, Keough N (2021) Medial and lateral posterior tibial slope are independent risk factors for noncontact ACL Injury in both men and women. Orthop J Sport Med. https://doi.org/10.1177/23259671211015940

Article  Google Scholar 

Hudek R, Fuchs B, Regenfelder F, Koch PP (2011) Is noncontact ACL injury associated with the posterior tibial and meniscal slope? Clin Orthop Relat Res 469:2377–2384

Article  CAS  PubMed  PubMed Central  Google Scholar 

Hudek R, Schmutz S, Regenfelder F, Fuchs B, Koch PP (2009) Novel measurement technique of the tibial slope on conventional MRI. Clin Orthop Relat Res 467:2066–2072

Article  PubMed  PubMed Central  Google Scholar 

Imhoff FB, Comer B, Obopilwe E, Beitzel K, Arciero RA, Mehl JT (2021) Effect of slope and varus correction high tibial osteotomy in the ACL-deficient and acl-reconstructed knee on kinematics and ACL graft force: a biomechanical analysis. Am J Sports Med 49:410–416

Article  PubMed  Google Scholar 

Jagadeesh N, Paidipati R, Parameshwar A, Shivalingappa VM (2022) Correlation of tibial parameters like medial, lateral posterior tibial slope and medial plateau depth with ACL injuries: randomized control study. Eur J Orthop Surg Traumatol. https://doi.org/10.1007/s00590-022-03288-x

Article  PubMed  Google Scholar 

Keizer MNJ, Hijmans JM, Gokeler A, Otten E, Brouwer RW (2020) Sagittal knee kinematics in relation with the posterior tibia slope during jump landing after an anterior cruciate ligament reconstruction. J Exp Orthop. https://doi.org/10.1186/s40634-020-00289-9

Article  PubMed  PubMed Central  Google Scholar 

Kikuchi N, Kanamori A, Kadone H, Kajiwara M, Okuno K, Hyodo KYM (2022) Relationship between posterior tibial slope and lower extremity biomechanics during a single-leg drop landing combined with a cognitive task in athletes after ACL reconstruction. Orthop J Sport Med. https://doi.org/10.1177/23259671221107931

Article  Google Scholar 

Landis JR, Koch GG (1977) The measurement of observer agreement for categorical data. Biometrics 33:159

Article  CAS  PubMed  Google Scholar 

Lee YS, Kim JG, Lim HC, Park JH, Park JW, Kim JG (2009) The relationship between tibial slope and meniscal insertion. Knee Surg Sport Traumatol Arthrosc 17:1416–1420

Article  Google Scholar 

Li Y, Hong L, Feng H, Wang Q, Zhang J, Song G, Chen X, Zhuo H (2014) Posterior tibial slope influences static anterior tibial translation in anterior cruciate ligament reconstruction: a minimum 2-year follow-up study. Am J Sports Med 42:927–933

Article  PubMed  Google Scholar 

McLean SG, Lucey SM, Rohrer S, Brandon C (2010) Knee joint anatomy predicts high-risk in vivo dynamic landing knee biomechanics. Clin Biomech 25:781–788

Article  Google Scholar 

Nagai K, Tashiro Y, Herbst E, Gale T, Wang JH, Irrgang JJ, Anderst W, Fu FH (2018) Steeper posterior tibial slope correlates with greater tibial tunnel widening after anterior cruciate ligament reconstruction. Knee Surg Sport Traumatol Arthrosc 26:3717–3723

Article  Google Scholar 

Navacchia A, Bates NA, Schilaty ND, Krych AJ, Hewett TE (2019) Knee abduction and internal rotation moments increase ACL force during landing through the posterior slope of the tibia. J Orthop Res 37:1730–1742

Article  PubMed  PubMed Central  Google Scholar 

Nishida K, Xu C, Gale T, Anderst W, Fu F (2021) Symmetry and sex differences in knee kinematics and ACL elongation in healthy collegiate athletes during high-impact activities revealed through dynamic biplane radiography. J Orthop Res 40:239–251

Article  PubMed  Google Scholar 

Schauer DA, Linton OW (2009) National council on radiation protection and measurements report shows substantial medical exposure increase. Radiology 253:293–296

Article  PubMed  Google Scholar 

Shultz SJ, Schmitz RJ (2012) Tibial plateau geometry influences lower extremity biomechanics during landing. Am J Sports Med 40:2029–2036

Article  PubMed  Google Scholar 

Song GY, Ni QK, Zheng T, Zhang ZJ, Feng H, Zhang H (2020) Slope-reducing tibial osteotomy combined with primary anterior cruciate ligament reconstruction produces improved knee stability in patients with steep posterior tibial slope, excessive anterior tibial subluxation in extension, and chronic meniscal poster. Am J Sports Med 48:3486–3494

Article  PubMed  Google Scholar 

Sturnick DR, Vacek PM, Desarno MJ, Gardner-Morse MG, Tourville TW, Slauterbeck JR, Johnson RJ, Shultz SJ, Beynnon BD (2015) Combined anatomic factors predicting risk of anterior cruciate ligament injury for males and females. Am J Sports Med 43:839–847

Article  PubMed  PubMed Central  Google Scholar 

Tradati D, Mouton C, Urhausen A, Beel W, Nührenbörger C, Seil R (2020) Lateral meniscal slope negatively affects post-operative anterior tibial translation at 1 year after primary anterior cruciate ligament reconstruction. Knee Surg Sport Traumatol Arthrosc 28:3524–3531

Article  Google Scholar 

Treece GM, Prager RW, Gee AH (1999) Regularized marching tetrahedra: Improved iso-surface extraction. Comput Graph 23:583–598

Article  Google Scholar 

Voos JE, Suero EM, Citak M, Petrigliano FP, Bosscher MRF, Citak M, Wickiewicz TL, Pearle AD (2012) Effect of tibial slope on the stability of the anterior cruciate ligament-deficient knee. Knee Surg Sport Traumatol Arthrosc 20:1626–1631

Article  Google Scholar 

Wang D, Kent RN, Amirtharaj MJ, Hardy BM, Nawabi DH, Wickiewicz TL, Pearle AD, Imhauser CW (2019) Tibiofemoral kinematics during compressive loading of the ACL-intact and ACL-sectioned knee: roles of tibial slope, medial eminence volume, and anterior laxity. J Bone Joint Surg Am 101:1085–1092

Article  PubMed  Google Scholar 

Webb JM, Salmon LJ, Leclerc E, Pinczewski LA, Roe JP (2013) Posterior tibial slope and further anterior cruciate ligament injuries in the anterior cruciate ligament-reconstructed patient. Am J Sports Med 41:2800–2804

Article  PubMed  Google Scholar 

Winter DA (1990) Processing of raw kinematic data. In: Winter DA (ed) Biomechanics and motor control of human movement. Wiley, New York

Google Scholar 

Zee MJM, Keizer MNJ, Dijkerman L, van Raaij JJAM, Hijmans JM, Diercks RL (2021) The correlation between posterior tibial slope and dynamic anterior tibial translation and dynamic range of tibial rotation. J Exp Orthop 8:71. https://doi.org/10.1186/s40634-021-00389-0

Article 

留言 (0)

沒有登入
gif