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Mechanical restoration and failure analyses of a hydrogel and scaffold composite strategy for annulus fibrosus repair.用于纤维环修复的水凝胶与支架复合策略的力学修复及失效分析
Acta Biomater. 2016 Jan;30:116-125. doi: 10.1016/j.actbio.2015.11.015. Epub 2015 Nov 11.
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Correlation between biomechanical properties of the annulus fibrosus and magnetic resonance imaging (MRI) findings.纤维环生物力学特性与磁共振成像(MRI)结果之间的相关性。
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Thermogelling bioadhesive scaffolds for intervertebral disk tissue engineering: preliminary in vitro comparison of aldehyde-based versus alginate microparticle-mediated adhesion.用于椎间盘组织工程的热凝胶生物粘附支架:基于醛类与藻酸盐微粒介导粘附的体外初步比较
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The degenerative state of the intervertebral disk independently predicts the failure of human lumbar spine to high rate loading: an experimental study.椎间盘退变状态可独立预测人体腰椎在高负荷下的失效:一项实验研究。
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纤维环修复的设计要求:椎间盘的力、位移和材料特性综述以及修复用候选水凝胶总结

Design Requirements for Annulus Fibrosus Repair: Review of Forces, Displacements, and Material Properties of the Intervertebral Disk and a Summary of Candidate Hydrogels for Repair.

作者信息

Long Rose G, Torre Olivia M, Hom Warren W, Assael Dylan J, Iatridis James C

出版信息

J Biomech Eng. 2016 Feb;138(2):021007. doi: 10.1115/1.4032353.

DOI:10.1115/1.4032353
PMID:26720265
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4844119/
Abstract

There is currently a lack of clinically available solutions to restore functionality to the intervertebral disk (IVD) following herniation injury to the annulus fibrosus (AF). Microdiscectomy is a commonly performed surgical procedure to alleviate pain caused by herniation; however, AF defects remain and can lead to accelerated degeneration and painful conditions. Currently available AF closure techniques do not restore mechanical functionality or promote tissue regeneration, and have risk of reherniation. This review determined quantitative design requirements for AF repair materials and summarized currently available hydrogels capable of meeting these design requirements by using a series of systematic PubMed database searches to yield 1500+ papers that were screened and analyzed for relevance to human lumbar in vivo measurements, motion segment behaviors, and tissue level properties. We propose a testing paradigm involving screening tests as well as more involved in situ and in vivo validation tests to efficiently identify promising biomaterials for AF repair. We suggest that successful materials must have high adhesion strength (∼0.2 MPa), match as many AF material properties as possible (e.g., approximately 1 MPa, 0. 3 MPa, and 30 MPa for compressive, shear, and tensile moduli, respectively), and have high tensile failure strain (∼65%) to advance to in situ and in vivo validation tests. While many biomaterials exist for AF repair, few undergo extensive mechanical characterization. A few hydrogels show promise for AF repair since they can match at least one material property of the AF while also adhering to AF tissue and are capable of easy implantation during surgical procedures to warrant additional optimization and validation.

摘要

目前,在纤维环(AF)发生疝损伤后,临床上缺乏可恢复椎间盘(IVD)功能的解决方案。显微椎间盘切除术是一种常见的外科手术,用于缓解疝引起的疼痛;然而,AF缺损仍然存在,并且可能导致加速退变和疼痛状况。目前可用的AF闭合技术不能恢复机械功能或促进组织再生,并且存在再次疝出的风险。本综述确定了AF修复材料的定量设计要求,并通过一系列系统的PubMed数据库检索,总结了能够满足这些设计要求的现有水凝胶,共检索到1500多篇论文,并对其与人体腰椎体内测量、运动节段行为和组织水平特性的相关性进行了筛选和分析。我们提出了一种测试范式,包括筛选测试以及更复杂的原位和体内验证测试,以有效地识别有前景的用于AF修复的生物材料。我们认为,成功的材料必须具有高粘附强度(约0.2MPa),尽可能匹配多种AF材料特性(例如,压缩模量、剪切模量和拉伸模量分别约为1MPa、0.3MPa和30MPa),并且具有高拉伸破坏应变(约65%),才能进入原位和体内验证测试。虽然存在许多用于AF修复的生物材料,但很少进行广泛的力学表征。一些水凝胶显示出用于AF修复的前景,因为它们可以匹配AF的至少一种材料特性,同时还能粘附于AF组织,并且能够在手术过程中轻松植入,值得进一步优化和验证。