The Migration Pattern of a Cementless Hydroxyapatite-Coated Titanium Stem under Immediate Full Weight-Bearing—A Randomized Controlled Trial Using Model-Based RSA
Abstract
1. Introduction
2. Methods
2.1. Implants and Surgical Technique
2.2. Clinical and Radiological Evaluation
2.3. Statistical Analysis
3. Results
4. Discussion
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- Australian Orthopaedic Association National Joint Replacement Registry (AOANJR). Hip, Knee & Shoulder Arthroplasty: 2018 Annual Report; AOA: Adelaide, Australia, 2018. [Google Scholar]
- Pilliar, R.M.; Lee, J.M.; Maniatopoulos, C. Observations on the effect of movement on bone ingrowth into porous-surfaced implants. Clin. Orthop. Relat. Res. 1986, 108–113. [Google Scholar] [CrossRef]
- Nieuwenhuijse, M.J.; Valstar, E.R.; Kaptein, B.L.; Nelissen, R.G. Good diagnostic performance of early migration as a predictor of late aseptic loosening of acetabular cups: Results from ten years of follow-up with Roentgen stereophotogrammetric analysis (RSA). J. Bone Jt. Surg. Am. 2012, 94, 874–880. [Google Scholar] [CrossRef]
- Valstar, E.; Kaptein, B.; Nelissen, R. Radiostereometry and new prostheses. ACTA Orthop. 2012, 83, 103–104. [Google Scholar] [CrossRef]
- van der Voort, P.; Pijls, B.G.; Nieuwenhuijse, M.J.; Jasper, J.; Fiocco, M.; Plevier, J.W.; Middeldorp, S.; Valstar, E.R.; Nelissen, R.G. Early subsidence of shape-closed hip arthroplasty stems is associated with late revision. A systematic review and meta-analysis of 24 RSA studies and 56 survival studies. ACTA Orthop. 2015, 86, 575–585. [Google Scholar] [CrossRef] [PubMed]
- Freeman, M.A.; Plante-Bordeneuve, P. Early migration and late aseptic failure of proximal femoral prostheses. J. Bone Jt. Surg. Br. 1994, 76, 432–438. [Google Scholar] [CrossRef]
- Kendrick, J.B.; Noble, P.C.; Tullos, H.S. Distal stem design and the torsional stability of cementless femoral stems. J. Arthroplast. 1995, 10, 463–469. [Google Scholar] [CrossRef]
- Mjoberg, B.; Hansson, L.I.; Selvik, G. Instability of total hip prostheses at rotational stress. A roentgen stereophotogrammetric study. ACTA Orthop. Scand. 1984, 55, 504–506. [Google Scholar] [CrossRef]
- Nunn, D.; Freeman, M.A.; Tanner, K.E.; Bonfield, W. Torsional stability of the femoral component of hip arthroplasty. Response to an anteriorly applied load. J. Bone Jt. Surg. Br. 1989, 71, 452–455. [Google Scholar] [CrossRef]
- Hurschler, C.; Seehaus, F.; Emmerich, J.; Kaptein, B.L.; Windhagen, H. Accuracy of model-based RSA contour reduction in a typical clinical application. Clin. Orthop. Relat. Res. 2008, 466, 1978–1986. [Google Scholar] [CrossRef]
- Valstar, E.R.; de Jong, F.W.; Vrooman, H.A.; Rozing, P.M.; Reiber, J.H. Model-based Roentgen stereophotogrammetry of orthopaedic implants. J. Biomech. 2001, 34, 715–722. [Google Scholar] [CrossRef]
- Cruz-Pardos, A.; Garcia-Rey, E.; Garcia-Cimbrelo, E. Total hip arthroplasty with use of the cementless zweymuller alloclassic system: A concise follow-up, at a minimum of 25 years, of a previous report. J. Bone Jt. Surg. Am. 2017, 99, 1927–1931. [Google Scholar] [CrossRef]
- Kolb, A.; Grubl, A.; Schneckener, C.D.; Chiari, C.; Kaider, A.; Lass, R.; Windhager, R. Cementless total hip arthroplasty with the rectangular titanium Zweymuller stem: A concise follow-up, at a minimum of twenty years, of previous reports. J. Bone Jt. Surg. Am. 2012, 94, 1681–1684. [Google Scholar] [CrossRef]
- Faul, F.; Erdfelder, E.; Buchner, A.; Lang, A.G. Statistical power analyses using G*Power 3.1: Tests for correlation and regression analyses. Behav. Res. Methods 2009, 41, 1149–1160. [Google Scholar] [CrossRef]
- Hoornenborg, D.; Sierevelt, I.N.; Spuijbroek, J.A.; Cheung, J.; van der Vis, H.M.; Beimers, L.; Haverkamp, D. Does hydroxyapatite coating enhance ingrowth and improve longevity of a Zweymuller type stem? A double-blinded randomised RSA trial. HIP Int. 2018, 28, 115–121. [Google Scholar] [CrossRef] [PubMed]
- Onsten, I.; Carlsson, A.S.; Sanzen, L.; Besjakov, J. Migration and wear of a hydroxyapatite-coated hip prosthesis. A controlled roentgen stereophotogrammetric study. J. Bone Jt. Surg. Br. 1996, 78, 85–91. [Google Scholar] [CrossRef][Green Version]
- Valstar, E.R.; Gill, R.; Ryd, L.; Flivik, G.; Borlin, N.; Karrholm, J. Guidelines for standardization of radiostereometry (RSA) of implants. ACTA Orthop. 2005, 76, 563–572. [Google Scholar] [CrossRef]
- Ranstam, J.; Ryd, L.; Onsten, I. Accurate accuracy assessment: Review of basic principles. ACTA Orthop. Scand. 2000, 71, 106–108. [Google Scholar] [CrossRef] [PubMed]
- Nysted, M.; Foss, O.A.; Klaksvik, J.; Benum, P.; Haugan, K.; Husby, O.S.; Aamodt, A. Small and similar amounts of micromotion in an anatomical stem and a customized cementless femoral stem in regular-shaped femurs. A 5-year follow-up randomized RSA study. ACTA Orthop. 2014, 85, 152–158. [Google Scholar] [CrossRef]
- Innmann, M.M.; Gotterbarm, T.; Kretzer, J.P.; Merle, C.; Ewerbeck, V.; Weiss, S.; Aldinger, P.R.; Streit, M.R. Minimum ten-year results of a 28-mm metal-on-metal bearing in cementless total hip arthroplasty in patients fifty years of age and younger. Int. Orthop. 2014, 38, 929–934. [Google Scholar] [CrossRef][Green Version]
- Mahomed, N.N.; Arndt, D.C.; McGrory, B.J.; Harris, W.H. The Harris hip score: Comparison of patient self-report with surgeon assessment. J. Arthroplast. 2001, 16, 575–580. [Google Scholar] [CrossRef]
- Pisecky, L.; Hipmair, G.; Schauer, B.; Bohler, N. 30-years of experience with the cementless implanted Alloclassic total hip arthroplasty system-An ultra-long-term follow-up. J. Orthop. 2018, 15, 18–23. [Google Scholar] [CrossRef] [PubMed]
- Bieger, R.; Freitag, T.; Ignatius, A.; Reichel, H.; Durselen, L. Primary stability of a shoulderless Zweymuller hip stem: A comparative in vitro micromotion study. J. Orthop. Surg. Res. 2016, 11, 73. [Google Scholar] [CrossRef][Green Version]
- Nelissen, R.G.; Pijls, B.G.; Karrholm, J.; Malchau, H.; Nieuwenhuijse, M.J.; Valstar, E.R. RSA and registries: The quest for phased introduction of new implants. J. Bone Jt. Surg. Am. 2011, 93, 62–65. [Google Scholar] [CrossRef] [PubMed]
- Strom, H.; Nilsson, O.; Milbrink, J.; Mallmin, H.; Larsson, S. The effect of early weight bearing on migration pattern of the uncemented CLS stem in total hip arthroplasty. J. Arthroplast. 2007, 22, 1122–1129. [Google Scholar] [CrossRef]
- Karrholm, J.; Herberts, P.; Hultmark, P.; Malchau, H.; Nivbrant, B.; Thanner, J. Radiostereometry of hip prostheses. Review of methodology and clinical results. Clin. Orthop. Relat. Res. 1997, 344, 94–110. [Google Scholar]
- Campbell, D.; Mercer, G.; Nilsson, K.G.; Wells, V.; Field, J.R.; Callary, S.A. Early migration characteristics of a hydroxyapatite-coated femoral stem: An RSA study. Int. Orthop. 2011, 35, 483–488. [Google Scholar] [CrossRef] [PubMed]
- Zweymuller, K.; Semlitsch, M. Concept and material properties of a cementless hip prosthesis system with Al2O3 ceramic ball heads and wrought Ti-6Al-4V stems. Arch. Orthop. Trauma Surg. 1982, 100, 229–236. [Google Scholar] [CrossRef] [PubMed]
Parameter | SL-PLUS MIA (n = 22) | SL-PLUS (n = 22) | p-Value |
---|---|---|---|
Age at surgery † (years) | 60 (39–74) | 60 (42–82) | 0.988 |
Female gender (%) | 68% | 64% | 0.750 |
Operated hip (right/left) (n) | 10/12 | 12/10 | 0.546 |
Body height † (cm) | 170 (156–187) | 169 (156–194) | 0.893 |
Body weight † (kg) | 84 (58–115) | 76 (50–123) | 0.142 |
HHS preoperatively † (points) | 50 (28–70) | 49 (20–73) | 0.754 |
Translation (mm) | Rotation (Degrees) | |
---|---|---|
Transverse axis | 0.17 (0.10, SD 0.08) | 0.45 (0.33, SD 0.22) |
Longitudinal axis | 0.33 (0.15, SD 0.16) | 1.29 (0.87, SD 0.63) |
Sagittal axis | 0.62 (0.29, SD 0.30) | 0.42 (0.14, SD 0.20) |
SL-PLUS (n = 15) | SL-PLUS MIA (n = 14) | SL-PLUS vs. SL-PLUS MIA | ||||
---|---|---|---|---|---|---|
Time | Mean (SD) | (95% CI) | Mean (SD) | (95% CI) | p-Value | |
Translation (mm) | ||||||
Medial(+)/Lateral(−) | 6 weeks | 0.02 (0.28) | −0.13 to 0.17 | 0.06 (0.26) | −0.09 to 0.20 | 0.729 |
3 months | 0.01 (0.28) | −0.15 to 0.16 | 0.04 (0.32) | −0.14 to 0.23 | 0.743 | |
6 months | −0.02 (0.31) | −0.19 to 0.15 | 0.04 (0.23) | −0.10 to 0.17 | 0.569 | |
12 months | −0.01 (0.27) | −0.16 to 0.14 | 0.02 (0.35) | −0.18 to 0.21 | 0.821 | |
24 months | −0.02 (0.27) | −0.17 to 0.13 | −0.03 (0.25) | −0.17 to 0.12 | 0.927 | |
Proximal(+)/Distal(−) | 6 weeks | −0.41 (0.83) | −0.86 to 0.05 | −1.07 (0.92) | −1.61 to −0.54 | 0.050 |
3 months | −0.48 (0.64) | −0.84 to −0.13 | −1.07 (0.90) | −1.59 to −0.55 | 0.051 | |
6 months | −0.54 (0.67) | −0.90 to −0.17 | −1.10 (0.86) | −1.60 to −0.60 | 0.059 | |
12 months | −0.45 (0.76) | −0.87 to −0.02 | −1.15 (0.91) | −1.67 to −0.62 | 0.032 * | |
24 months | −0.40 (0.66) | −0.77 to −0.04 | −1.08 (0.93) | −1.62 to −0.55 | 0.030 * | |
Anterior(+)/Posterior(−) | 6 weeks | 0.03 (0.50) | −0.25 to 0.31 | −0.03 (0.32) | −0.22 to 0.15 | 0.701 |
3 months | −0.20 (0.52) | −0.49 to 0.09 | −0.07 (0.56) | −0.40 to 0.26 | 0.523 | |
6 months | −0.29 (0.64) | −0.64 to 0.07 | −0.22 (0.51) | −0.51 to 0.08 | 0.745 | |
12 months | −0.01 (0.59) | −0.34 to 0.31 | −0.18 (0.73) | −0.60 to 0.24 | 0.499 | |
24 months | −0.22 (0.55) | −0.53 to 0.08 | −0.15 (0.59) | −0.50 to 0.19 | 0.750 | |
Rotation (degrees) | ||||||
Extension(+)/Flexion(−) | 6 weeks | −0.29 (0.67) | −0.66 to 0.09 | −0.31 (0.69) | −0.71 to 0.09 | 0.933 |
3 months | −0.31 (0.63) | −0.65 to 0.04 | −0.34 (0.71) | −0.74 to 0.07 | 0.903 | |
6 months | −0.09 (0.63) | −0.43 to 0.26 | −0.02 (0.82) | −0.50 to 0.45 | 0.823 | |
12 months | 0.08 (0.52) | −0.21 to 0.36 | −0.22 (0.90) | −0.74 to 0.30 | 0.277 | |
24 months | −0.03 (0.67) | −0.34 to 0.41 | −0.07 (1.10) | −0.70 to 0.56 | 0.762 | |
Ante(-)/Retroversion(−) | 6 weeks | −0.12 (1.95) | −1.19 to 0.96 | 0.63 (1.45) | −0.21 to 1.46 | 0.256 |
3 months | −0.48 (1.76) | −1.46 to 0.49 | 0.55 (3.14) | −1.26 to 2.36 | 0.280 | |
6 months | −1.15 (1.64) | −2.06 to −0.25 | −0.53 (2.62) | −2.04 to 0.98 | 0.445 | |
12 months | −0.66 (1.48) | −1.48 to 0.16 | −0.06 (3.04) | −1.81 to 1.70 | 0.499 | |
24 months | −1.29 (1.81) | −2.30 to −0.29 | −1.03 (2.81) | −2.65 to 0.59 | 0.766 | |
Valgus(+)/Varus(−) | 6 weeks | 0.02 (0.19) | −0.09 to 0.13 | 0.07 (0.33) | −0.12 to 0.26 | 0.652 |
3 months | 0.07 (0.51) | −0.21 to 0.36 | 0.04 (0.43) | −0.21 to 0.28 | 0.840 | |
6 months | 0.09 (0.47) | −0.18 to 0.35 | 0.03 (0.43) | −0.22 to 0.28 | 0.747 | |
12 months | 0.01 (0.41) | −0.22 to 0.24 | 0.04 (0.65) | −0.33 to 0.42 | 0.876 | |
24 months | 0.04 (0.39) | −0.18 to 0.25 | 0.02 (0.57) | −0.31 to 0.35 | 0.918 |
Follow-Up Interval | SL-PLUS MIA Group (n = 22) | SL-PLUS Group (n = 22) | p-Value |
---|---|---|---|
Preoperative | 50.1 (11.0) | 48.8 (14.8) | 0.754 |
3 months | 84.2 (11.7) | 81.5 (15.2) | 0.534 |
12 months | 93.6 (9.1) | 90.3 (12.8) | 0.354 |
24 months | 95.1 (6.7) | 89.0 (11.9) | 0.053 |
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Reiner, T.; Sonntag, R.; Kretzer, J.P.; Clarius, M.; Jakubowitz, E.; Weiss, S.; Ewerbeck, V.; Merle, C.; Moradi, B.; Kinkel, S.; et al. The Migration Pattern of a Cementless Hydroxyapatite-Coated Titanium Stem under Immediate Full Weight-Bearing—A Randomized Controlled Trial Using Model-Based RSA. J. Clin. Med. 2020, 9, 2077. https://doi.org/10.3390/jcm9072077
Reiner T, Sonntag R, Kretzer JP, Clarius M, Jakubowitz E, Weiss S, Ewerbeck V, Merle C, Moradi B, Kinkel S, et al. The Migration Pattern of a Cementless Hydroxyapatite-Coated Titanium Stem under Immediate Full Weight-Bearing—A Randomized Controlled Trial Using Model-Based RSA. Journal of Clinical Medicine. 2020; 9(7):2077. https://doi.org/10.3390/jcm9072077
Chicago/Turabian StyleReiner, Tobias, Robert Sonntag, Jan Philippe Kretzer, Michael Clarius, Eike Jakubowitz, Stefan Weiss, Volker Ewerbeck, Christian Merle, Babak Moradi, Stefan Kinkel, and et al. 2020. "The Migration Pattern of a Cementless Hydroxyapatite-Coated Titanium Stem under Immediate Full Weight-Bearing—A Randomized Controlled Trial Using Model-Based RSA" Journal of Clinical Medicine 9, no. 7: 2077. https://doi.org/10.3390/jcm9072077
APA StyleReiner, T., Sonntag, R., Kretzer, J. P., Clarius, M., Jakubowitz, E., Weiss, S., Ewerbeck, V., Merle, C., Moradi, B., Kinkel, S., Gotterbarm, T., & Hagmann, S. (2020). The Migration Pattern of a Cementless Hydroxyapatite-Coated Titanium Stem under Immediate Full Weight-Bearing—A Randomized Controlled Trial Using Model-Based RSA. Journal of Clinical Medicine, 9(7), 2077. https://doi.org/10.3390/jcm9072077