| 1. |
Riera J, Campion M, Néri T, et al. Association between walking gait biomechanical changes after anterior cruciate ligament injury or reconstruction and the development of osteoarthritis: A systematic review. Knee Surg Sports Traumatol Arthrosc, 2025. doi: 10.1002/ksa.70183.
|
| 2. |
劉誠, 趙領財, 王浩, 等. 前交叉韌帶重建術后膝關節三維步態及功能隨訪研究. 臨床外科雜志, 2023, 31(4): 321-325.
|
| 3. |
Dryjanski-Lerner A, Vera-Valencia G, Trueba-Vasavilbaso C, et al. Posttraumatic osteoarthrosis in a patient with chronic anterior cruciate ligament rupture. Case report and review of the literature. Acta Ortop Mex, 2023, 37(5): 302-308.
|
| 4. |
Haase L, Nelson G, Raji Y, et al. Patients with anterior cruciate ligament rupture and ipsilateral segond fractures have high rates of concurrent knee pathology. Arthrosc Sports Med Rehabil, 2023, 5(2): e375-e379.
|
| 5. |
Nelson F, Billinghurst RC, Pidoux I, et al. Early post-traumatic osteoarthritis-like changes in human articular cartilage following rupture of the anterior cruciate ligament. Osteoarthritis Cartilage, 2006, 14(2): 114-119.
|
| 6. |
De Roover A, Escribano-Nú?EZ A, Monteagudo S, et al. Fundamentals of osteoarthritis: Inflammatory mediators in osteoarthritis. Osteoarthritis Cartilage, 2023, 31(10): 1303-1311.
|
| 7. |
Panina SB, Krolevets IV, Milyutina NP, et al. Circulating levels of proinflammatory mediators as potential biomarkers of post-traumatic knee osteoarthritis development. J Orthop Traumatol, 2017, 18(4): 349-357.
|
| 8. |
Iversen IJ, Pham TM, Schmal H. Do acute inflammatory cytokines affect 3- and 12-month postoperative functional outcomes-a prospective cohort study of 12 patients with proximal tibia fractures. BMC Musculoskelet Disord, 2021, 22(1): 342. doi: 10.1186/s12891-021-04207-7.
|
| 9. |
Constantinou M, Loureiro A, Carty C, et al. Hip joint mechanics during walking in individuals with mild-to-moderate hip osteoarthritis. Gait Posture, 2017, 53: 162-167.
|
| 10. |
Wang H, Duan W, Dang X, et al. Kinematic effects of unilateral TKA on the contralateral knee in Chinese patients with advanced osteoarthritis: a prospective gait analysis study. Front Bioeng Biotechnol, 2024, 12: 1463049. doi: 10.3389/fbioe.2024.1463049.
|
| 11. |
Willinger L, Athwal KK, Williams A, et al. An anterior cruciate ligament in vitro rupture model based on clinical imaging. Am J Sports Med, 2021, 49(9): 2387-2395.
|
| 12. |
Logan MC, Williams A, Lavelle J, et al. Tibiofemoral kinematics following successful anterior cruciate ligament reconstruction using dynamic multiple resonance imaging. Am J Sports Med, 2004, 32(4): 984-992.
|
| 13. |
Andriacchi TP. Functional analysis of pre and post-knee surgery: total knee arthroplasty and ACL reconstruction. J Biomech Eng, 1993, 115(4B): 575-581.
|
| 14. |
Paterno MV, Hewett TE. Biomechanics of multi-ligament knee injuries (MLKI) and effects on gait. N Am J Sports Phys Ther, 2008, 3(4): 234-241.
|
| 15. |
Kittl C, El-Daou H, Athwal KK, et al. The role of the anterolateral structures and the ACL in controlling laxity of the intact and ACL-deficient knee. Am J Sports Med, 2016, 44(2): 345-354.
|
| 16. |
Beaulieu ML, Ashton-Miller JA, Wojtys EM. Loading mechanisms of the anterior cruciate ligament. Sports Biomech, 2023, 22(1): 1-29.
|
| 17. |
Markolf KL, Gorek JF, Kabo JM, et al. Direct measurement of resultant forces in the anterior cruciate ligament. An in vitro study performed with a new experimental technique. J Bone Joint Surg (Am), 1990, 72(4): 557-567.
|
| 18. |
Grindem H, Eitzen I, Moksnes H, et al. A pair-matched comparison of return to pivoting sports at 1 year in anterior cruciate ligament-injured patients after a nonoperative versus an operative treatment course. Am J Sports Med, 2012, 40(11): 2509-2516.
|
| 19. |
Hunt ER, Jacobs CA, Conley CE, et al. Anterior cruciate ligament reconstruction reinitiates an inflammatory and chondrodegenerative process in the knee joint. Journal of Orthopaedic Research: Official Publication of the Orthopaedic Research Society, 2021, 39(6): 1281-1288.
|
| 20. |
Zhu C, Ding X, Chen M, et al. Exercise-mediated skeletal muscle-derived IL-6 regulates bone metabolism: a new perspective on muscle-bone crosstalk. Biomolecules, 2025, 15(6): 893. doi: 10.3390/biom15060893.
|
| 21. |
Siqueira MB, Frangiamore S, Klika AK, et al. Comparison of synovial fluid cytokine levels between traumatic knee injury and end-stage osteoarthritis. J Knee Surg, 2017, 30(2): 128-133.
|
| 22. |
Schulze-Tanzil G, Zreiqat H, Sabat R, et al. Interleukin-10 and articular cartilage: experimental therapeutical approaches in cartilage disorders. Curr Gene Ther, 2009, 9(4): 306-315.
|
| 23. |
Wen P, Liu L. Functions of macrophages, T cells, and neutrophils in the synovial microenvironment of osteoarthritis. J Inflamm Res, 2025, 18: 15671-15686.
|
| 24. |
Leite CBG, Bumberger A, Franco D, et al. Effect of specialized pro-resolving mediators on knee joint inflammation. Knee, 2025, 53: 257-263.
|
| 25. |
Vincent TL. Mechanoflammation in osteoarthritis pathogenesis. Semin Arthritis Rheum, 2019, 49(3S): S36-S38.
|
| 26. |
Brophy RH, Silverman RM, Rai MF. Mechanisms of anterior cruciate ligament injury-induced disruption of joint homeostasis and onset of osteoarthritis. Connect Tissue Res, 2025, 66(5): 380-386.
|
| 27. |
Wilk KE, Ivey M, Thomas ZM, et al. Neurocognitive and neuromuscular rehabilitation techniques after ACL injury, part 1: optimizing recovery in the acute post-operative phase- a clinical commentary. Int J Sports Phys Ther, 2024, 19(11): 1373-1385.
|
| 28. |
Wackerle AM, Joreitz R, Sprague A, et al. Freddie Fu Panther Symposium Expert Group 2024: Rehabilitation and return to sport after anterior cruciate ligament reconstruction Part 2: Concepts and emerging technology in return to sport. Knee Surg Sports Traumatol Arthrosc, 2026, 34(2): 531-542.
|