Abstract
Abstract
Background
Posterior pedicle screw (PS) fixation, a common treatment method for widespread low-back pain problems, has many uncertain aspects including stress concentration levels, effects on adjacent segments, and relationships with physiological motions. A better understanding of how posterior PS fixation affects the biomechanics of the lumbar spine is needed. For this purpose, a finite element (FE) model of a lumbar spine with posterior PS fixation at the L4–L5 segment level was developed by partially removing facet joints (FJs) to imitate an actual surgical procedure. This FE study aimed to investigate the influence of the posterior PS fixation system on the biomechanics of the lumbar spine before and after fusion by determining which physiological motions have the most increase in posterior instrumentation (PI) stresses and FJ loading.
Results
It was determined that posterior PS fixation increased FJ loading by approximately 35% and 23% at the L3–L4 adjacent level with extension and lateral bending motion, respectively. This increase in FJ loading at the adjacent level could point to the possibility that adjacent segment disease has developed or progressed after posterior lumbar interbody fusion. Furthermore, analyses of peak von Mises stresses on PI showed that the maximum PI stresses of 272.1 MPa and 263.7 MPa occurred in lateral bending and flexion motion before fusion, respectively.
Conclusions
The effects of a posterior PS fixation system on the biomechanics of the lumbar spine before and after fusion were investigated for all physiological motions. This model could be used as a fundamental tool for further studies, providing a better understanding of the effects of posterior PS fixation by clearing up uncertain aspects.
Publisher
Springer Science and Business Media LLC
Subject
Radiology, Nuclear Medicine and imaging,Biomedical Engineering,General Medicine,Biomaterials,Radiological and Ultrasound Technology
Reference60 articles.
1. Benzel EC. Biomechanics of spine stabilization. New York: Thieme Publishers; 2015. p. 481–94.
2. Choi J, Kim S, Shin D. Biomechanical comparison of spinal fusion methods using interspinous process compressor and pedicle screw fixation system based on finite element method. J Korean Neurosurg Soc. 2016;59:91–7.
3. Jain P, Khan MR. Biomechanical study of lumbar spine (l2–l4) using hybrid stabilization device—a finite element analysis. Int J Manuf Mater Mech Eng. 2020;10:20–32.
4. Xu M, Yang J, Lieberman I, Haddas R. Stress distribution in vertebral bone and pedicle screw and screw–bone load transfers among various fixation methods for lumbar spine surgical alignment: a finite element study. Med Eng Phys. 2019;63:26–32.
5. Kang K, Kim H, Son J, Yeom JS, Chun H. Comparing an instrumented posterior fixation system with rigid and semi-flexible rods using finite element analysis. Int J Precis Eng Manuf. 2015;16:163–70.
Cited by
19 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献