Ansaripour Hossein, Ferguson Stephen J, Flohr Markus
CeramTec GmbH, CeramTec-Platz 1-9, Plochingen 73207, Germany; Institute for Biomechanics, D-HEST, ETH, Zurich 8093, Switzerland.
Institute for Biomechanics, D-HEST, ETH, Hönggerbergring 64, HPP O-22, Zurich 8093, Switzerland.
J Biomech Eng. 2022 Oct 1;144(10). doi: 10.1115/1.4054439.
In vitro testing has been conducted to provide a comprehensive understanding of the biomechanics of the cervical spine. This has allowed a characterization of the stability of the spine as influenced by the intrinsic properties of its tissue constituents and the severity of degeneration or injury. This also enables the preclinical estimation of spinal implant functionality and the success of operative procedures. The purpose of this review paper was to compile methodologies and results from various studies addressing spinal kinematics in pre- and postoperative conditions so that they could be compared. The reviewed literature was evaluated to provide suggestions for a better approach for future studies, to reduce the uncertainties and facilitate comparisons among various results. The overview is presented in a way to inform various disciplines, such as experimental testing, design development, and clinical treatment. The biomechanical characteristics of the cervical spine, mainly the segmental range of motion (ROM), intradiscal pressure (IDP), and facet joint load (FJL), have been assessed by testing functional spinal units (FSUs). The relative effects of pathologies including disc degeneration, muscle dysfunction, and ligamentous transection have been studied by imposing on the specimen complex load scenarios imitating physiological conditions. The biomechanical response is strongly influenced by specimen type, test condition, and the different types of implants utilized in the different experimental groups.
已经进行了体外测试,以全面了解颈椎的生物力学。这使得能够对脊柱的稳定性进行表征,其受组织成分的固有特性以及退变或损伤的严重程度影响。这也能够对脊柱植入物的功能和手术程序的成功率进行临床前评估。这篇综述文章的目的是汇编各种研究中关于术前和术后脊柱运动学的方法和结果,以便进行比较。对所综述的文献进行评估,以提供关于未来研究更好方法的建议,减少不确定性并促进各种结果之间的比较。综述以一种能为各个学科提供信息的方式呈现,例如实验测试、设计开发和临床治疗。颈椎的生物力学特性,主要是节段性活动范围(ROM)、椎间盘内压力(IDP)和小关节负荷(FJL),已通过测试功能性脊柱单元(FSU)进行评估。通过对标本施加模拟生理条件的复杂负荷情况,研究了包括椎间盘退变、肌肉功能障碍和韧带横断等病理情况的相对影响。生物力学反应受到标本类型、测试条件以及不同实验组中使用的不同类型植入物的强烈影响。