1) Sabouret P, Lavoie F, Cloutier JM. Total knee replacement with retention of both cruciate ligaments:a 22-year follow-up study. Bone Joint J 2013;95-B(7):917-22.
2) Pritchett JW. Bicruciate-retaining total knee replacement provides satisfactory function and implant survivorship at 23 years. Clin Orthop Relat Res 2015;473(7):2327-33.
3) Hamada D, Wada K, Takasago T, et al. Native rotational knee kinematics are lost in bicruciate-retaining total knee arthroplasty when the tibial component is replaced. Knee Surg Sports Traumatol Arthrosc 2018;26(11):3249-56.
4) Wada K, Hamada D, Takasago T, et al. The medial constrained insert restores native knee rotational kinematics after bicruciate-retaining total knee arthroplasty. Knee Surg Sports Traumatol Arthrosc 2019;27(5):1621-7.
5) Okada Y, Teramoto A, Takagi T, et al. ACL function in bicruciate-retaining total knee arthroplasty. J Bone Joint Surg Am 2018;100(17):e114. doi:10.2106/JBJS.18.00099.
6) Takasago T, Hamada D, Wada K, et al. Insufficient lateral joint laxity after bicruciate-retaining total knee arthroplasty potentially influences kinematics during flexion:a biomechanical cadaveric study. Knee 2021;28:311-8.
7) Watanabe M, Kuriyama S, Nakamura S, et al. Abnormal knee kinematics caused by mechanical alignment in symmetric bicruciate-retaining total knee arthroplasty are alleviated by kinematic alignment. Knee 2020;27(5):1385-95.
8) Troelsen A, Ingelsrud LH, Thomsen MG, et al. Are there differences in micromotion on radiostereometric analysis between bicruciate and cruciate-retaining designs in TKA? A randomized controlled trial. Clin Orthop Relat Res 2020;478(9):2045-53.
9) Lavoie F, Denis A, Chergui S, et al. Bucruciate-retaining total knee arthroplasty non-inferior to posterior-stabilized prostheses after 5 years:a randomized, controlled trial. Knee Surg Sports Traumatol Arthrosc 2023;31(3):1034-42.
10) Arnout A, Victor J, Vermue H, et al. Knee joint laxity is restored in a bi-cruciate retaining TKA-design. Knee Surg Sports Traumatol Arthrosc 2020;28(9):2863-71.
11) Smith LA, Nachtrab J, LaCour M, et al. In vivo knee kinematics:how important are the roles of femoral geometry and the cruciate ligaments. J Arthroplasty 2021;36(4):1445-54.
12) Kono K, Inui H, Tomita T, et al. Bicruciate-retaining total knee arthroplasty reproduces in vivo kinematics of normal knees to a lower extent than unicompartmental knee arthroplasty. Knee Surg Sports Traumatol Arthrosc 2020;28(9):3007-15.
13) Singh V, Yeroushalmi D, Christensen TH, et al. Early outcomes of a novel bicruciate-retaining knee system:a 2-year minimum retrospective cohort study. Arch Orthop Trauma Surg 2023;143(1):503-9.
14) Inui H, Yamagami R, Kono K, et al. Short-term clinical results of bicruciate-retaining total knee arthroplasty using personalized alignment. BMC Musculoskelet Disord 2023;24(1):965. doi:10.1186/s12891-023-07083-5.
15) Omichi Y, Hamada D, Wada K, et al. Robotic-assisted total knee arthroplasty improved component alignment in the coronal plane compared with navigation-assisted total knee arthroplasty:a comparative study. J Robot Surg 2023;17(6):2831-9.
16) Tamaki Y, Hamada D, Wada K, et al. Kinematic comparison between the knee after bicruciate stabilized total knee arthroplasty and the native knee:a cadaveric study. Knee 2023;42:289-96.
17) GreicoTF, Sharma A, Dessinger GM, et al. In vivo kinematic comparison of a bicruciate stabilized total knee arthroplasty and the normal knee using fluoroscopy. J Arthroplasty 2018;33(2):565-71.
18) Murakami K, Hamai S, Okazaki K, et al. In vivo kinematics of gait in posterior -stabilized and bicruciate-stabilized total knee arthroplasties using image-matching techniques. Int Orthop 2018;42(11):2573-81.
19) Kono K, Inui H, Tomita T, et al. Bicruciate-stabilised total knee arthroplasty provides good functional stability during high-flexion weight bearing activities. Knee Surg Sports Traumatol Arthrosc 2019;27(7):2096-103.
20) Inui H, Taketomi S, Yamagami R, et al. Comparison of intraoperative kinematics and their influence on the clinical outcomes between posterior stabilized total knee arthroplasty and bi-cruciate stabilized total knee arthroplasty. Knee 2020;27(4):1263-70.
21) LaCour MT, Dessinger GM, Hass SB, et al. In vivo weight-bearing kinematics for constrained versus traditional bicruciate stabilized total knee arthroplasty cohorts compared to the normal knee. J Arthroplasty 2023;S0883-5403(23)01176-2. doi:10.1016/j.arth.2023.11.033..
22) Broberg JS, Naudie DDR, Howard JL, et al. Effect of surgical technique, implant design, and time of examination on contact kinematics:a study of bicruciate-stabilized and posterior stabilized total knee arthroplasty. J Arthroplasty 2024;S0883-5403(24)00256-0. doi:10.1016/j.arth.2024.03.040.
23) Iriuchishima T, Ryu K. Bicruciate substituting total knee arthroplasty improves stair climbing ability when compared with cruciate-retain or posterior stabilizing total knee arthroplasty. Indian J Orthop 2019;53(5):641-5.
24) Harris AI, Christen B, Malcorps JJ, et al. Midterm performance of a guided-motion bicruciate-stabilized total knee system:results from the international study of over 2000 consecutive primary total knee arthroplasties. J Arthroplasty 2019;34(7S):S201-8.
25) Kaneko T, Kono N, Mochizuki Y, et al. Bi-cruciate substituting total knee arthroplasty improved medio-lateral instability in mid-flexion range. J Orthop 2017;14(1):201-6.
26) Inui H, Taketomi S, Yamagami R, et al. Influence of surgical factors on patient satisfaction after bi-cruciate stabilized total knee arthroplasty:retrospective examination using multiple regression analysis. BMC Musculoskelet Disord 2021;22(1):215. doi:10.1186/s12891-021-04098-8.
27) Fujita M, Matsumoto T, Nakano N, et al. Rotational mismatch between femoral and tibial components should be avoided in JOURNEY II bi-cruciate stabilized total knee arthroplasty. Knee 2022;38:69-75.