Hsu Ting-Shuo, Chiang Chang-Jung, Wang Hsuan-Wen, Chen Yu-San, Lin Chun-Li
Department of Biomedical Engineering, National Yang Ming Chiao Tung University, Taipei 112304, Taiwan.
Department of Orthopaedics, Shuang Ho Hospital, Taipei Medical University, New Taipei City 235041, Taiwan.
Bioengineering (Basel). 2025 Jun 18;12(6):668. doi: 10.3390/bioengineering12060668.
This study aimed to develop a novel modular pedicle screw system incorporating an elliptical sleeve to conform the pedicle's elliptical cross-section and enhance fixation strength with mechanical stability. The biomechanical evaluation was conducted based on fundamental mechanics principles, followed by a finite element (FE) analysis to assess stress distribution under compressive and torsional loads. Subsequently, mechanical testing was performed to evaluate static and fatigue bending performance and in vitro biomechanical fatigue in porcine vertebrae by pull-out testing after 5000 and 100,000 cycles to assess fixation stability. The FE analysis demonstrated that the elliptical sleeve design improved bending resistance by 1.21× and torsional resistance by 1.91× compared to conventional cylindrical screws. Mechanical testing revealed greater bending/torsion stiffness and fatigue resistance, with the elliptical sleeve screw withstanding 5 million cycles at 235.4 N, compared to 175.46 N for cylindrical screws. Biomechanical pull-out testing further confirmed significantly higher retention strength after 100,000 cycles (1229.75 N vs. 867.83 N, = 0.0101), whereas cylindrical screws failed prematurely at 10,663 cycles due to excessive displacement (>2 mm). The elliptical sleeve pedicle screw system demonstrated enhanced fixation strength, reduced micromotion, and superior fatigue resistance, making it a promising alternative to conventional pedicle screws for improving long-term spinal fixation stability.
本研究旨在开发一种新型模块化椎弓根螺钉系统,该系统包含一个椭圆形套筒,以贴合椎弓根的椭圆形横截面,并通过机械稳定性增强固定强度。基于基本力学原理进行生物力学评估,随后进行有限元(FE)分析,以评估压缩和扭转载荷下的应力分布。随后进行机械测试,以评估静态和疲劳弯曲性能,以及通过在5000次和100,000次循环后进行拔出测试来评估猪椎骨的体外生物力学疲劳,以评估固定稳定性。有限元分析表明,与传统圆柱形螺钉相比,椭圆形套筒设计使抗弯能力提高了1.21倍,抗扭能力提高了1.91倍。机械测试显示出更大的弯曲/扭转刚度和抗疲劳性,椭圆形套筒螺钉在235.4 N下能承受500万次循环,而圆柱形螺钉在175.46 N下能承受的循环次数为100,000次。生物力学拔出测试进一步证实,在100,000次循环后,保留强度显著更高(1229.75 N对867.83 N, = 0.0101),而圆柱形螺钉由于过度位移(>2 mm)在10,663次循环时过早失效。椭圆形套筒椎弓根螺钉系统显示出增强的固定强度、减少的微动和卓越的抗疲劳性,使其成为传统椎弓根螺钉在改善长期脊柱固定稳定性方面的有前途的替代方案。