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1
Loading of the medial meniscus in the ACL deficient knee: A multibody computational study.前交叉韧带损伤膝关节内侧半月板的负荷:一项多体计算研究。
Med Eng Phys. 2017 Mar;41:26-34. doi: 10.1016/j.medengphy.2016.12.006. Epub 2017 Jan 11.
2
Force measurements in the medial meniscus posterior horn attachment: effects of anterior cruciate ligament removal.内侧半月板后角附着处的力测量:前交叉韧带切除的影响。
Am J Sports Med. 2012 Feb;40(2):332-8. doi: 10.1177/0363546511426100. Epub 2011 Nov 15.
3
Longitudinal tear of the medial meniscus posterior horn in the anterior cruciate ligament-deficient knee significantly influences anterior stability.前交叉韧带缺失的膝关节中内侧半月板后角的纵向撕裂显著影响前向稳定性。
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4
Effect of Meniscocapsular and Meniscotibial Lesions in ACL-Deficient and ACL-Reconstructed Knees: A Biomechanical Study.前交叉韧带(ACL)缺失和重建膝关节中半月板-囊和半月板-胫骨病变的影响:一项生物力学研究。
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Posterior Medial Meniscus Root Tears Potentiate the Effect of Increased Tibial Slope on Anterior Cruciate Ligament Graft Forces.后内侧半月板后根撕裂增强了胫骨后倾对前交叉韧带移植物力的影响。
Am J Sports Med. 2020 Feb;48(2):334-340. doi: 10.1177/0363546519889628. Epub 2019 Dec 10.
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Femoro-tibial and menisco-tibial translation patterns in patients with unilateral anterior cruciate ligament deficiency--a potential cause of secondary meniscal tears.单侧前交叉韧带损伤患者的股骨-胫骨及半月板-胫骨平移模式——继发性半月板撕裂的潜在原因
J Orthop Res. 2004 Mar;22(2):275-82. doi: 10.1016/j.orthres.2003.08.009.
7
Lateral Meniscal Posterior Root Repair With Anterior Cruciate Ligament Reconstruction Better Restores Knee Stability.前交叉韧带重建术中修复半月板后外侧根部可更好地恢复膝关节稳定性。
Am J Sports Med. 2019 Jan;47(1):59-65. doi: 10.1177/0363546518808004. Epub 2018 Nov 19.
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ACL Deficiency Increases Forces on the Medial Femoral Condyle and the Lateral Meniscus with Applied Rotatory Loads.前交叉韧带损伤会在施加旋转负荷时增加股骨内侧髁和外侧半月板上的受力。
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Posteromedial Meniscocapsular Lesions Increase Tibiofemoral Joint Laxity With Anterior Cruciate Ligament Deficiency, and Their Repair Reduces Laxity.后内侧半月板关节囊损伤会增加前交叉韧带损伤时的胫股关节松弛度,而对其进行修复可减少松弛度。
Am J Sports Med. 2016 Feb;44(2):400-8. doi: 10.1177/0363546515617454. Epub 2015 Dec 11.
10
The role of meniscal tears and meniscectomy in the mechanical stability of the anterior cruciate ligament deficient knee.半月板撕裂和半月板切除术在前交叉韧带损伤膝关节机械稳定性中的作用。
Knee. 2018 Dec;25(6):1051-1056. doi: 10.1016/j.knee.2018.09.007. Epub 2018 Nov 6.

引用本文的文献

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Association of Morphological Changes in the Posterior Horn of the Meniscus of Knee With Anterior Cruciate Ligament Injury: A New Biological Evaluation Index.膝关节半月板后角形态学改变与前交叉韧带损伤的相关性:一种新的生物学评估指标
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Muscle-Driven Total Knee Replacement Stability with Virtual Ligaments.带有虚拟韧带的肌肉驱动全膝关节置换稳定性
Bioengineering (Basel). 2025 Jan 25;12(2):112. doi: 10.3390/bioengineering12020112.
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Alteration in ACL loading after total and partial medial meniscectomy.全内侧半月板切除术和部分内侧半月板切除术后前交叉韧带负荷的改变。
BMC Musculoskelet Disord. 2024 Jan 25;25(1):94. doi: 10.1186/s12891-024-07201-x.
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Concomitant Injuries Associated With ACL Rupture in Elite Professional Alpine Ski Racers and Soccer Players: A Comparative Study With Propensity Score Matching Analysis.精英职业高山滑雪运动员和足球运动员前交叉韧带断裂相关的合并伤:倾向得分匹配分析的比较研究
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Virtual Joint Motion Simulator Accurately Predicts Effects of Femoral Component Malalignment during TKA.虚拟关节运动模拟器准确预测全膝关节置换术中股骨假体排列不齐的影响。
Bioengineering (Basel). 2023 Apr 22;10(5):503. doi: 10.3390/bioengineering10050503.
6
Importance of posterior tibial slope in joint kinematics with an anterior cruciate ligament-deficient knee.后交叉韧带损伤膝关节中胫骨后倾在关节运动学中的重要性。
Bone Joint Res. 2022 Oct;11(10):739-750. doi: 10.1302/2046-3758.1110.BJR-2022-0039.R1.
7
A new indirect magnetic resonance imaging finding in anterior cruciate ligament injuries: Medial and lateral meniscus posterior base angle.前交叉韧带损伤的一种新的间接磁共振成像发现:内侧和外侧半月板后角基底角。
Jt Dis Relat Surg. 2022;33(2):399-405. doi: 10.52312/jdrs.2022.653. Epub 2022 Jul 6.
8
Kinematics and kinetics comparison of ultra-congruent versus medial-pivot designs for total knee arthroplasty by multibody analysis.多体分析比较全膝关节置换术中超吻合与中轴旋转设计的运动学和动力学。
Sci Rep. 2022 Feb 23;12(1):3052. doi: 10.1038/s41598-022-06909-x.
9
Biomechanics of the medial meniscus in the osteoarthritic knee joint.骨关节炎膝关节内侧半月板的生物力学
PeerJ. 2021 Nov 24;9:e12509. doi: 10.7717/peerj.12509. eCollection 2021.
10
Meniscus repair with simultaneous anterior cruciate ligament reconstruction: Clinical outcomes, failure rates and subsequent processing.半月板修复同期行前交叉韧带重建:临床结果、失败率和后续处理。
Chin J Traumatol. 2022 Jan;25(1):37-44. doi: 10.1016/j.cjtee.2021.09.005. Epub 2021 Sep 20.

本文引用的文献

1
Sport-Specific Yearly Risk and Incidence of Anterior Cruciate Ligament Tears in High School Athletes: A Systematic Review and Meta-analysis.高中运动员前交叉韧带撕裂的特定运动年度风险和发生率:一项系统评价和荟萃分析。
Am J Sports Med. 2016 Oct;44(10):2716-2723. doi: 10.1177/0363546515617742. Epub 2015 Dec 11.
2
Cartilage morphology at 2-3 years following anterior cruciate ligament reconstruction with or without concomitant meniscal pathology.前交叉韧带重建术后2至3年伴或不伴半月板病变的软骨形态。
Knee Surg Sports Traumatol Arthrosc. 2017 Feb;25(2):426-436. doi: 10.1007/s00167-015-3831-1. Epub 2015 Oct 27.
3
The Anterolateral Ligament: An Anatomic, Radiographic, and Biomechanical Analysis.前外侧韧带:解剖学、影像学及生物力学分析
Am J Sports Med. 2015 Jul;43(7):1606-15. doi: 10.1177/0363546515578253. Epub 2015 Apr 17.
4
Predicted loading on the menisci during gait: The effect of horn laxity.步态期间半月板的预测负荷:角松弛的影响。
J Biomech. 2015 Jun 1;48(8):1490-8. doi: 10.1016/j.jbiomech.2015.01.047. Epub 2015 Mar 14.
5
In vivo length change patterns of the medial and lateral collateral ligaments along the flexion path of the knee.膝关节屈伸过程中内侧和外侧副韧带的体内长度变化模式。
Knee Surg Sports Traumatol Arthrosc. 2015 Oct;23(10):3055-61. doi: 10.1007/s00167-014-3306-9. Epub 2014 Sep 20.
6
The role of the deep medial collateral ligament in controlling rotational stability of the knee.膝部深层内侧副韧带在控制膝关节旋转稳定性中的作用。
Knee Surg Sports Traumatol Arthrosc. 2015 Oct;23(10):3101-7. doi: 10.1007/s00167-014-3095-1. Epub 2014 Jun 4.
7
In situ forces and length patterns of the fibular collateral ligament under controlled loading: an in vitro biomechanical study using a robotic system.在可控加载条件下腓侧副韧带的原位力和长度模式:一项使用机器人系统的体外生物力学研究
Knee Surg Sports Traumatol Arthrosc. 2015 Apr;23(4):1018-25. doi: 10.1007/s00167-013-2824-1. Epub 2014 Jan 14.
8
Radiographic landmarks for locating the femoral origin of the superficial medial collateral ligament.用于定位内侧副韧带浅层股骨起点的影像学标志。
Am J Sports Med. 2013 Nov;41(11):2527-32. doi: 10.1177/0363546513504895. Epub 2013 Oct 3.
9
Anatomy of the anterolateral ligament of the knee.膝关节前外侧韧带解剖。
J Anat. 2013 Oct;223(4):321-8. doi: 10.1111/joa.12087. Epub 2013 Aug 1.
10
Anatomic characteristics and radiographic references of the anterolateral and posteromedial bundles of the posterior cruciate ligament.后交叉韧带前外侧束和后内侧束的解剖学特征和影像学参考。
Am J Sports Med. 2012 Jul;40(7):1558-63. doi: 10.1177/0363546512445166. Epub 2012 Apr 26.

前交叉韧带损伤膝关节内侧半月板的负荷:一项多体计算研究。

Loading of the medial meniscus in the ACL deficient knee: A multibody computational study.

作者信息

Guess Trent M, Razu Swithin

机构信息

University of Missouri, Department of Physical Therapy, Department of Orthopaedic Surgery, 801 Clark Hall, Columbia, MO 65211-4250, United States .

University of Missouri, Department of Physical Therapy, Department of Orthopaedic Surgery, 801 Clark Hall, Columbia, MO 65211-4250, United States.

出版信息

Med Eng Phys. 2017 Mar;41:26-34. doi: 10.1016/j.medengphy.2016.12.006. Epub 2017 Jan 11.

DOI:10.1016/j.medengphy.2016.12.006
PMID:28089224
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5316296/
Abstract

The menisci of the knee reduce tibiofemoral contact pressures and aid in knee lubrication and nourishment. Meniscal injury occurs in half of knees sustaining anterior cruciate ligament injury and the vast majority of tears in the medial meniscus transpire in the posterior horn region. In this study, computational multibody models of the knee were derived from medical images and passive leg motion for two female subjects. The models were validated against experimental measures available in the literature and then used to evaluate medial meniscus contact force and internal hoop tension. The models predicted that the loss of anterior cruciate ligament (ACL) constraint increased contact and hoop forces in the medial menisci by a factor of 4 when a 100N anterior tibial force was applied. Contact forces were concentrated in the posterior horn and hoop forces were also greater in this region. No differences were found in contact or hoop tension between the intact and ACL deficient (ACLd) knees when only a 5Nm external tibial torque was applied about the long axis of the tibia. Combining a 100N anterior tibial force and a 5Nm external tibial torque increased posterior horn contact and hoop forces, even in the intact knee. The results of this study show that the posterior horn region of the medial meniscus experiences higher contact forces and hoop tension, making this region more susceptible to injury, especially with the loss of anterior tibia motion constraint provided by the ACL. The contribution of the dMCL in constraining posterior medial meniscus motion, at the cost of higher posterior horn hoop tension, is also demonstrated.

摘要

膝关节半月板可降低胫股关节接触压力,并有助于膝关节的润滑和营养供应。半月板损伤发生于半数伴有前交叉韧带损伤的膝关节中,并且内侧半月板的绝大多数撕裂发生在后角区域。在本研究中,从两名女性受试者的医学图像和被动腿部运动中获取了膝关节的计算多体模型。这些模型根据文献中可用的实验测量进行了验证,然后用于评估内侧半月板接触力和内部环向张力。模型预测,当施加100N的胫骨前向力时,前交叉韧带(ACL)约束的丧失会使内侧半月板的接触力和环向力增加4倍。接触力集中在后角,该区域的环向力也更大。当仅围绕胫骨长轴施加5Nm的外部胫骨扭矩时,完整膝关节和ACL缺陷(ACLd)膝关节之间在接触力或环向张力方面未发现差异。即使在完整膝关节中,将100N的胫骨前向力和5Nm的外部胫骨扭矩相结合也会增加后角接触力和环向力。本研究结果表明,内侧半月板后角区域承受更高的接触力和环向张力,使得该区域更容易受伤,尤其是在ACL提供的胫骨前向运动约束丧失的情况下。同时也证明了内侧副韧带深层(dMCL)在限制内侧半月板后向运动方面的作用,代价是后角环向张力更高。