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Biomechanical properties of novel transpedicular transdiscal screw fixation with interbody arthrodesis technique in lumbar spine: A finite element study

机译:腰椎间盘关节固定术对新型经椎弓根椎间盘螺钉固定的生物力学特性:有限元研究

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PurposeThe purpose of this study was to investigate finite element biomechanical properties of the novel transpedicular transdiscal (TPTD) screw fixation with interbody arthrodesis technique in lumbar spine.MethodsAn L4–L5 finite element model was established and validated. Then, two fixation models, TPTD?screw system and bilateral pedicle screw system (BPSS), were established on the validated L4–L5 finite element model. The inferior surface of the L5 vertebra was set immobilised, and moment of 7.5?Nm was applied on the L4 vertebra to test the range of motion (ROM) and stress at flexion, extension, lateral bending?and axial rotation.ResultsThe intact model was validated for prediction accuracy by comparing two previously published studies. Both of TPTD and BPSS fixation models displayed decreased motion at L4–L5. The ROMs of six moments of flexion, extension, left lateral bending, right lateral bending, left axial rotation and right axial rotation in TPTD model were 1.92, 2.12, 1.10, 1.11, 0.90 and 0.87°, respectively; in BPSS model, they were 1.48, 0.42, 0.35, 0.38, 0.74 and 0.75°, respectively. The screws' peak stress of above six moments in TPTD model was 182.58, 272.75, 133.01, 137.36, 155.48?and 150.50?MPa, respectively; and in BPSS model, it was 103.16, 129.74, 120.28, 134.62, 180.84 and 169.76?MPa, respectively.ConclusionBoth BPSS and TPTD can provide stable biomechanical properties for lumbar spine. The decreased ROM of flexion, extension and lateral bending was slightly more in BPSS model than in TPTD model, but TPTD model had similar ROM of axial rotation with BPSS model. The screws' peak stress of TPTD screw focused on the L4–L5 intervertebral space region, and more caution should be put at this site for the fatigue breakage.The translational potential of this articleOur finite element study provides the biomechanical properties of novel TPTD screw fixation, and promotes this novel transpedicular transdiscal screw fixation with interbody arthrodesis technique be used clinically.
机译:目的本研究的目的是研究腰椎间盘关节固定术对新型经椎弓根经椎间盘固定术(TPTD)螺钉固定的有限元生物力学性能。方法建立并验证了L4–L5有限元模型。然后,在验证的L4–L5有限元模型上建立了TPTD?螺钉系统和双侧椎弓根螺钉系统(BPSS)的两个固定模型。将L5椎骨的下表面固定不动,在L4椎骨上施加7.5?Nm的力矩,以测试屈曲,伸展,侧向弯曲和轴向旋转时的运动范围(ROM)和应力。通过比较两个先前发表的研究对预测准确性进行验证。 TPTD和BPSS固定模型都显示L4–L5处运动减少。 TPTD模型的六个屈曲,伸展,左弯,右弯,左轴向旋转和右轴向旋转的力矩分别为1.92、2.12、1.10、1.11、0.90和0.87°。在BPSS模型中,它们分别为1.48、0.42、0.35、0.38、0.74和0.75°。 TPTD模型中6个力矩以上的螺丝峰值应力分别为182.58、272.75、133.01、137.36、155.48?和150.50?MPa。 BPSS模型分别为103.16、129.74、120.28、134.62、180.84和169.76?MPa。结论BPSS和TPTD均可为腰椎提供稳定的生物力学性能。在BPSS模型中,弯曲,延伸和横向弯曲的ROM减小量比在TPTD模型中减小,但TPTD模型的轴向旋转ROM与BPSS模型相似。 TPTD螺钉​​的峰值应力集中在L4–L5椎间隙区域,因此在该部位应谨慎行事,以防疲劳断裂。本文的平移潜力我们的有限元研究提供了新型TPTD螺钉​​固定的生物力学特性。 ,并推广这种新颖的经椎间盘椎间盘螺钉固定术与椎间关节固定术的临床应用。

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