Peters, C. L., Jimenez, C., Erickson, J., Anderson, M. B., & Pelt, C. E. (2013). Lessons learned from selective soft-tissue release for gap balancing in primary total knee arthroplasty: An analysis of 1216 consecutive total knee arthroplasties: AAOS exhibit selection. The JOURNAL of Bone and Joint Surgery, 95(20), e152.
PubMed PubMed Central Google Scholar
Kayani, B., Konan, S., Tahmassebi, J., Pietrzak, J. R., & Haddad, F. (2018). Robotic-arm assisted total knee arthroplasty is associated with improved early functional recovery and reduced time to hospital discharge compared with conventional jig-based total knee arthroplasty: A prospective cohort study. The Bone & Joint Journal, 100(7), 930–937.
Wakelin, E. A., Ponder, C. E., Randall, A. L., Koenig, J. A., Plaskos, C., DeClaire, J. H., Lawrence, J. M., & Keggi, J. M. (2023). Intra-operative laxity and balance impact 2-year pain outcomes in TKA: A prospective cohort study. Knee Surgery, Sports Traumatology, Arthroscopy, 31(12), 5535–5545.
Kim, A. G., Bernhard, Z., Acuña, A. J., Wu, V. S., & Kamath, A. F. (2023). Use of intraoperative technology in total knee arthroplasty is not associated with reductions in postoperative pain. Knee Surgery, Sports Traumatology, Arthroscopy, 31(4), 1370–1381.
Khlopas, A., Sodhi, N., Sultan, A. A., Chughtai, M., Molloy, R. M., & Mont, M. A. (2018). Robotic arm–assisted total knee arthroplasty. The Journal of Arthroplasty, 33(7), 2002–2006.
Kayani, B., Konan, S., Pietrzak, J. R., & Haddad, F. S. (2018). Iatrogenic bone and soft tissue trauma in robotic-arm assisted total knee arthroplasty compared with conventional jig-based total knee arthroplasty: A prospective cohort study and validation of a new classification system. The Journal of Arthroplasty, 33(8), 2496–2501.
Kafelov, M., Batailler, C., Shatrov, J., Al-Jufaili, J., Farhat, J., Servien, E., & Lustig, S. (2023). Functional positioning principles for image-based robotic-assisted TKA achieved a higher forgotten joint score at 1 year compared to conventional TKA with restricted kinematic alignment. Knee Surgery, Sports Traumatology, Arthroscopy, 31(12), 5591–5602.
Kayani, B., Fontalis, A., Haddad, I. C., Donovan, C., Rajput, V., & Haddad, F. S. (2023). Robotic-arm assisted total knee arthroplasty is associated with comparable functional outcomes but improved forgotten joint scores compared with conventional manual total knee arthroplasty at five-year follow-up. Knee Surgery, Sports Traumatology, Arthroscopy, 31(12), 5453–5462.
Rossi, S. M., Sangaletti, R., Andriollo, L., Matascioli, L., & Benazzo, F. (2024). The use of a modern robotic system for the treatment of severe knee deformities. Technology and Health Care, 32, 1.
Clark, G., Steer, R., & Wood, D. (2023). Functional alignment achieves a more balanced total knee arthroplasty than either mechanical alignment or kinematic alignment prior to soft tissue releases. Knee Surgery, Sports Traumatology, Arthroscopy, 31(4), 1420–1426.
Turan, K., Camurcu, Y., Kezer, M., Uysal, Y., Kizilay, Y. O., Ucpunar, H., & Temiz, A. (2023). A comparison of robotic-assisted and manual techniques in restricted kinematically aligned total knee arthroplasty: Coronal alignment improvement with no significant clinical differences. Knee Surgery, Sports Traumatology, Arthroscopy, 31(11), 4673–4679.
Vanlommel, L., Vanlommel, J., Claes, S., & Bellemans, J. (2013). Slight undercorrection following total knee arthroplasty results in superior clinical outcomes in varus knees. Knee Surgery, Sports Traumatology, Arthroscopy, 21(10), 2325–2330.
Rivière, C., Iranpour, F., Auvinet, E., Howell, S., Vendittoli, P. A., Cobb, J., & Parratte, S. (2017). Alignment options for total knee arthroplasty: A systematic review. Orthopaedics & Traumatology: Surgery & Research, 103(7), 1047–1056.
Lustig, S., Sappey-Marinier, E., Fary, C., Servien, E., Parratte, S., & Batailler, C. (2021). Personalized alignment in total knee arthroplasty: Current concepts. SICOT-J, 7, 19.
Article PubMed PubMed Central Google Scholar
McAuley, J. P., & Engh, G. A. (2003). Constraint in total knee arthroplasty: When and what? The Journal of Arthroplasty, 18(3), 51–54.
Wetzel, R. J., Shah, R. R., & Puri, L. (2013). Demonstration of saw blade accuracy and excursion: A cadaveric comparison study of blade types used in total knee arthroplasty. The Journal of Arthroplasty, 28(6), 985–987.
Lee, G. C., & Lotke, P. A. (2011). Management of intraoperative medial collateral ligament injury during TKA. Clinical Orthopaedics and Related Research, 469, 64–68.
Leopold, S. S., McStay, C., Klafeta, K., Jacobs, J. J., Berger, R. A., & Rosenberg, A. G. (2001). Primary repair of intraoperative disruption of the medial collateral ligament during total knee arthroplasty. JBJS, 83(1), 86.
Lynch, A. F., Rorabeck, C. H., & Bourne, R. B. (1987). Extensor mechanism complications following total knee arthroplasty. The Journal of Arthroplasty, 2(2), 135–140.
Article CAS PubMed Google Scholar
Rand, J. A., Morrey, B. F., & Bryan, R. S. (1989). Patellar tendon rupture after total knee arthroplasty. Clinical Orthopaedics and Related Research, 244, 233–238.
Bates, M. D., & Springer, B. D. (2015). Extensor mechanism disruption after total knee arthroplasty. JAAOS-Journal of the American Academy of Orthopaedic Surgeons, 23(2), 95–106.
Zan, P., Wu, Z., Yu, X., Fan, L., Xu, T., & Li, G. (2016). The effect of patella eversion on clinical outcome measures in simultaneous bilateral total knee arthroplasty: A prospective randomized controlled trial. The Journal of Arthroplasty, 31(3), 637–640.
Siqueira, M. B., Haller, K., Mulder, A., Goldblum, A. S., Klika, A. K., & Barsoum, W. K. (2016). Outcomes of medial collateral ligament injuries during total knee arthroplasty. The Journal of Knee Surgery, 29(01), 068–073.
Khlopas, A., Chughtai, M., Hampp, E. L., Scholl, L. Y., Prieto, M., Chang, T. C., Abbasi, A., Bhowmik-Stoker, M., Otto, J., Jacofsky, D. J., & Mont, M. A. (2017). Robotic-arm assisted total knee arthroplasty demonstrated soft tissue protection. Surgical Technology International, 1(30), 441–446.
Nogalo, C., Meena, A., Abermann, E., & Fink, C. (2023). Complications and downsides of the robotic total knee arthroplasty: A systematic review. Knee Surgery, Sports Traumatology, Arthroscopy, 31(3), 736–750.
Sultan, A. A., Piuzzi, N., Khlopas, A., Chughtai, M., Sodhi, N., & Mont, M. A. (2017). Utilization of robotic-arm assisted total knee arthroplasty for soft tissue protection. Expert Review of Medical Devices, 14(12), 925–927.
Article CAS PubMed Google Scholar
Herregodts, S., Verhaeghe, M., Paridaens, R., Herregodts, J., Vermue, H., Arnout, N., De Baets, P., & Victor, J. (2020). Soft-tissue penetration of the oscillating saw during tibial resection in total knee arthroplasty: A cadaveric study. The Bone & Joint Journal, 102(10), 1324–1330.
Rossi, S. M., Sangaletti, R., Perticarini, L., Terragnoli, F., & Benazzo, F. (2023). High accuracy of a new robotically assisted technique for total knee arthroplasty: An in vivo study. Knee Surgery, Sports Traumatology, Arthroscopy, 31(3), 1153–1161.
Shen, T. S., Uppstrom, T. J., Walker, P. J., Yu, J. S., Cheng, R., Mayman, D. J., Jerabek, S. A., & Ast, M. P. (2023). High degree of alignment precision associated with total knee arthroplasty performed using a surgical robot or handheld navigation. Knee Surgery, Sports Traumatology, Arthroscopy, 31(11), 4735–4740.
Song, S. J., Park, C. H., & Bae, D. K. (2019). What to know for selecting cruciate-retaining or posterior-stabilized total knee arthroplasty. Clinics in Orthopedic Surgery, 11(2), 142–150.
Article PubMed PubMed Central Google Scholar
Aggarwal, A. K., Goel, A., & Radotra, B. D. (2013). Predictors of posterior cruciate ligament degeneration in osteoarthritic knees. Journal of Orthopaedic Surgery, 21(1), 15–18.
Matziolis, G., Mehlhorn, S., Schattat, N., Diederichs, G., Hube, R., Perka, C., & Matziolis, D. (2012). How much of the PCL is really preserved during the tibial cut? Knee Surgery, Sports Traumatology, Arthroscopy, 20, 1083–1086.
Kayani, B., Konan, S., Horriat, S., Ibrahim, M. S., & Haddad, F. S. (2019). Posterior cruciate ligament resection in total knee arthroplasty: The effect on flexion-extension gaps, mediolateral laxity, and fixed flexion deformity. The Bone & Joint Journal, 101(10), 1230–1237.
Pitta, M., Esposito, C. I., Li, Z., Lee, Y. Y., Wright, T. M., & Padgett, D. E. (2018). Failure after modern total knee arthroplasty: A prospective study of 18,065 knees. The Journal of Arthroplasty, 33(2), 407–414.
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