Suppr超能文献

使用颈椎次全椎间盘切除术假体进行颈椎人工椎间盘置换的生物力学分析。

Biomechanical Analysis of Cervical Artificial Disc Replacement Using Cervical Subtotal Discectomy Prosthesis.

作者信息

Wo Jin, Lv Zhenjing, Wang Jing, Shen Kui, Zhu Haoran, Liu Yang, Huang Yuen, Sun Guodong, Li Zhizhong

机构信息

Department of Orthopedics, First Affiliated Hospital, Jinan University, Guangzhou, China.

Department of Spine Orthopedics, Guangdong Hospital of Integrated Traditional Chinese and Western Medicine, Foshan, China.

出版信息

Front Bioeng Biotechnol. 2021 Jul 14;9:680769. doi: 10.3389/fbioe.2021.680769. eCollection 2021.

Abstract

Anterior cervical discectomy and fusion (ACDF) sacrifices segmental mobility, which can lead to the acceleration of adjacent segment degeneration. The challenge has promoted cervical artificial disc replacement (CADR) as a substitute for ACDF. However, CADR has revealed a series of new issues that are not found in ACDF, such as hypermobility, subsidence, and wear phenomenon. This study designed a cervical subtotal discectomy prosthesis (CSDP) consisting of a cervical disc prosthesis structure (CDP structure), cervical vertebra fixation structure (CVF structure), link structure, and locking screw, aiming to facilitate motion control and reduce subsidence. The aim of this study was to assess the biomechanics of the CSDP using finite element (FE) analysis, friction-wear test, and non-human primates implantation study. For the FE analysis, based on an intact FE C-C spinal model, a CSDP was implanted at C-C to establish the CSDP FE model and compare it with the Prestige LP prosthesis (Medtronic Sofamor Danek, Minneapolis, MN, United States). The range of motion (ROM), bone-implant interface stress, and facet joint force were calculated under flexion extension, lateral bending, and axial rotation. In addition, CSDP was elevated 1 mm to mimic an improper implantation technique to analyze the biomechanics of CSDP errors in the FE model. Moreover, the friction-wear test was conducted to research CSDP durability and observe surface wear morphology and total wear volume. Finally, the CSDP was implanted into non-human primates, and its properties were evaluated and verified by radiology. In the FE analysis, the ROM of the CSDP FE model was close to that of the intact FE model in the operative and adjacent segments. In the operative segment, the CSDP error FE model increased ROM in flexion extension, lateral bending, and axial rotation. The maximum stress in the CSDP FE model was similar to that of the intact FE model and was located in the peripheral cortical bone region. The facet joint force changes were minimal in extension, lateral bending, and axial rotation loads in CSDP. In the friction-wear test, after the 150-W movement simulation, both the CVF-link-junction and the CDP-link-junction had slight wear. In the CSDP non-human primate implantation study, no subsidence, dislocation, or loosening was observed. In the FE analysis, the biomechanical parameters of the CSDP FE model were relatively close to those of the intact FE model when compared with the Prestige LP FE model. In terms of CSDP error FE models, we demonstrated that the implantation position influences CSDP performance, such as ROM, bone-implant interface stress, and facet joint force. In addition, we performed a friction-wear test on the CSDP to prove its durability. Finally, CSDP studies with non-human primates have shown that the CSDP is effective.

摘要

颈椎前路椎间盘切除融合术(ACDF)会牺牲节段活动度,这可能导致相邻节段退变加速。这一挑战推动了颈椎人工椎间盘置换术(CADR)作为ACDF的替代方法。然而,CADR出现了一系列ACDF中未发现的新问题,如活动度过大、下沉和磨损现象。本研究设计了一种颈椎次全椎间盘切除假体(CSDP),它由颈椎间盘假体结构(CDP结构)、颈椎固定结构(CVF结构)、连接结构和锁定螺钉组成,旨在便于控制运动并减少下沉。本研究的目的是通过有限元(FE)分析、摩擦磨损试验和非人灵长类动物植入研究来评估CSDP的生物力学性能。对于FE分析,基于完整的FE C-C脊柱模型,在C-C节段植入CSDP以建立CSDP FE模型,并将其与Prestige LP假体(美敦力索法玛丹纳克公司,美国明尼阿波利斯)进行比较。在屈伸、侧弯和轴向旋转时计算活动度(ROM)以及骨-植入物界面应力和小关节力。此外,将CSDP抬高1 mm以模拟植入技术不当,从而在FE模型中分析CSDP错误的生物力学性能。此外,进行摩擦磨损试验以研究CSDP的耐久性,并观察表面磨损形态和总磨损量。最后,将CSDP植入非人灵长类动物体内,并通过放射学评估和验证其性能。在FE分析中,CSDP FE模型在手术节段和相邻节段的ROM与完整FE模型相近。在手术节段,CSDP错误FE模型在屈伸、侧弯和轴向旋转时增加了ROM。CSDP FE模型中的最大应力与完整FE模型相似,位于外周皮质骨区域。在CSDP的屈伸、侧弯和轴向旋转负荷下,小关节力变化最小。在摩擦磨损试验中,经过150 W的运动模拟后,CVF-连接点和CDP-连接点均有轻微磨损。在CSDP非人灵长类动物植入研究中,未观察到下沉、脱位或松动。在FE分析中,与Prestige LP FE模型相比,CSDP FE模型的生物力学参数与完整FE模型相对接近。就CSDP错误FE模型而言,我们证明了植入位置会影响CSDP的性能,如ROM、骨-植入物界面应力和小关节力。此外,我们对CSDP进行了摩擦磨损试验以证明其耐久性。最后,CSDP的非人灵长类动物研究表明CSDP是有效的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5300/8317600/a2a805297d9a/fbioe-09-680769-g0001.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验