Borrelli Simone, Putame Giovanni, Audenino Alberto L, Bignardi Cristina, Ferro Andrea, Marone Stefano, Terzini Mara
PolitoBIOMed Lab, Politecnico di Torino, Turin, Italy.
Department of Mechanical and Aerospace Engineering, Politecnico di Torino, Turin, Italy.
Front Bioeng Biotechnol. 2023 Mar 3;11:1114711. doi: 10.3389/fbioe.2023.1114711. eCollection 2023.
Spinal stability plays a crucial role in the success of the surgical treatment of lumbar vertebral metastasis and, in current practice, less invasive approaches such as short constructs have been considered. Concurrently, carbon fiber-reinforced (CFR) poly-ether-ether-ketone (PEEK) fixation devices are expanding in oncologic spinal surgery thanks to their radiotransparency and valid mechanical properties. This study attempts to provide an exhaustive biomechanical comparison of different CFR-PEEK surgical stabilizations through a highly reproducible experimental setup. A Sawbones biomimetic phantom (T12-S1) was tested in flexion, extension, lateral bending, and axial rotation. An hemisome lesion on L3 vertebral body was mimicked and different pedicle screw posterior fixations were realized with implants from CarboFix Orthopedics Ltd: a long construct involving two spinal levels above and below the lesion, and a short construct involving only the levels adjacent to L3, with and without the addition of a transverse rod-rod cross-link; to provide additional insights on its long-term applicability, the event of a pedicle screw loosening was also accounted. Short construct reduced the overloading onset caused by long stabilization. Particularly, the segmental motion contribution less deviated from the physiologic pattern and also the long-chain stiffness was reduced with respect to the prevalent long construct. The use of the cross-link enhanced the short stabilization by making it significantly stiffer in lateral bending and axial rotation, and by limiting mobiliza-tion in case of pedicle screw loosening. The present study proved the biomechanical benefits of cross-link augmentation in short CFR-PEEK fixation, demonstrating it to be a potential alternative to standard long fixation in the surgical management of lumbar metastasis.
脊柱稳定性在腰椎转移瘤手术治疗的成功中起着关键作用,在当前的实践中,人们已经考虑采用如短节段固定等侵入性较小的方法。同时,碳纤维增强(CFR)聚醚醚酮(PEEK)固定装置因其射线可透性和有效的力学性能,在脊柱肿瘤手术中得到了越来越广泛的应用。本研究试图通过高度可重复的实验装置,对不同的CFR-PEEK手术固定方式进行详尽的生物力学比较。使用Sawbones仿生模型(T12-S1)进行前屈、后伸、侧弯和轴向旋转测试。模拟L3椎体的半侧病变,并使用CarboFix Orthopedics Ltd公司的植入物实现不同的椎弓根螺钉后路固定:一种长节段固定,涉及病变上下两个脊柱节段;一种短节段固定,仅涉及与L3相邻的节段,分别有无添加横向杆-杆交联;为了深入了解其长期适用性,还考虑了椎弓根螺钉松动的情况。短节段固定减少了长节段固定引起的过载起始。特别是,节段运动贡献与生理模式的偏差较小,并且相对于普遍使用的长节段固定,长链刚度也有所降低。使用交联增强了短节段固定,使其在侧弯和轴向旋转时显著更硬,并在椎弓根螺钉松动时限制了活动。本研究证明了在短CFR-PEEK固定中增加交联的生物力学益处,表明它是腰椎转移瘤手术管理中标准长节段固定的潜在替代方案。