Axial and sagittal rotation of cementless tibial baseplates occurs in bone under joint loading.
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[1] P. Rullkoetter,et al. Impact of patient, surgical, and implant design factors on predicted tray–bone interface micromotions in cementless total knee arthroplasty , 2022, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[2] K. Søballe,et al. Component migration, bone mineral density changes, and bone turnover markers in cementless and cemented total knee arthroplasty: a prospective randomized RSA study in 53 patients with 2-year follow-up , 2022, Knee Surgery, Sports Traumatology, Arthroscopy.
[3] A. Siddiqi,et al. Highlights of the 2021 American Joint Replacement Registry Annual Report , 2022, Arthroplasty today.
[4] T. Wright,et al. Bone Ongrowth of Contemporary Cementless Tibial Components: A Retrieval Analysis , 2022, Arthroplasty today.
[5] T. Wright,et al. Effect of varus alignment on the bone‐implant interaction of a cementless tibial baseplate during gait , 2021, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[6] M. Teeter,et al. Effect of gap balancing and measured resection techniques on implant migration and contact kinematics of a cementless total knee arthroplasty. , 2021, The Knee.
[7] P. Noble,et al. Micromotion and Migration of Cementless Tibial Trays Under Functional Loading Conditions. , 2020, The Journal of arthroplasty.
[8] D. Fick,et al. Cementless Versus Cemented Tibial Fixation in Posterior Stabilized Total Knee Replacement: A Randomized Trial. , 2020, The Journal of bone and joint surgery. American volume.
[9] P. Rullkoetter,et al. Validation and sensitivity of model-predicted proximal tibial displacement and tray micromotion in cementless total knee arthroplasty under physiological loading conditions. , 2020, Journal of the mechanical behavior of biomedical materials.
[10] A. Moslemian,et al. Condylar‐Stabilized TKR May Not Fully Compensate for PCL‐Deficiency: An In Vitro Cadaver Study , 2019, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[11] R. Barrack,et al. Cemented Versus Cementless Total Knee Arthroplasty of the Same Modern Design , 2019, The Journal of bone and joint surgery. American volume.
[12] M. Dunbar,et al. Predictive value of short-term migration in determining long-term stable fixation in cemented and cementless total knee arthroplasties. , 2019, The bone & joint journal.
[13] S. Sporer,et al. Evaluation of a 3D-printed total knee arthroplasty using radiostereometric analysis. , 2019, The bone & joint journal.
[14] Fernando J Quevedo González,et al. Mechanical performance of cementless total knee replacements: It is not all about the maximum loads , 2019, Journal of orthopaedic research : official publication of the Orthopaedic Research Society.
[15] E. Valstar,et al. Equivalent 2-year stabilization of uncemented tibial component migration despite higher early migration compared with cemented fixation: an RSA study on 360 total knee arthroplasties , 2019, Acta orthopaedica.
[16] P. Rullkoetter,et al. Validation of model-predicted tibial tray-synthetic bone relative motion in cementless total knee replacement during activities of daily living. , 2018, Journal of biomechanics.
[17] J. Plevier,et al. RSA migration of total knee replacements , 2018, Acta orthopaedica.
[18] M. Teeter,et al. Inducible displacement of cemented tibial components ten years after total knee arthroplasty , 2018, The bone & joint journal.
[19] J. Jauregui,et al. Cementless Total Knee Arthroplasty: A Review , 2014, The Journal of Knee Surgery.
[20] J. Plevier,et al. Early migration of tibial components is associated with late revision , 2012, Acta orthopaedica.
[21] E R Valstar,et al. Kinematics and early migration in single-radius mobile- and fixed-bearing total knee prostheses. , 2012, Clinical biomechanics.
[22] J. L. Astephen,et al. Inducible displacement of a trabecular metal tibial monoblock component. , 2010, The Journal of arthroplasty.