Mechanical Effectiveness of Polyvinyl Alcohol/Polyvinyl Pyrrolidone (PVA/PVP) as an Intervertebral Disc Polymer

Pub Date : 2013-11-15 DOI:10.1115/IMECE2013-64767
Kooroush Azartash-Namin, Zheila J Azartash-Namin, S. A. Williams, Khiet Tran, M. Khandaker
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引用次数: 2

Abstract

The intervertebral disc is one of the body’s most vital structures. It provides support and enables six degree of freedom (6DOF) motions in the spine: flexion, extension, right and left lateral bending, compression, and axial rotation. When individuals suffer from degenerative disc disease, the nucleus pulposus deteriorates, causing a loss of articulation in the intervertebral disc. To address this problem, replacements for the nucleus pulposus can be used. The objective of this study was to evaluate a potential nucleus pulposus replacement consisting of a hydrogel polymer. The hydrogel was synthesized by physically cross-linking 95%-weight polyvinyl alcohol (PVA) and 5%-weight polyvinyl pyrrolidone (PVP). PVA and PVP were selected for the hydrogel implant due to the natural biocompatibility when the two are physically cross-linked. In order to evaluate the mechanical effectiveness of the hydrogel, a slider-crank mechanism was designed and constructed to create the 6DOF motions when interfaced with a Universal Mechanical Testing System. The viscoelastic properties of the polymer were obtained using a rheometer, which determined the elastic (G′) and viscous (G″) moduli of the PVA/PVP hydrogel polymer by calculating the complex shear modulus (G*) under low-frequency oscillating shear deformation. This allows for study of the viscoelastic performance of the isolated nucleus pulposus and hydrogel implant. The elastic modulus of the hydrogel was tested at parameters 5%, 10%, and 15% strain with results of 228.6 Pa, 988.8 Pa, and 1793 Pa, respectively. However, the elastic modulus tested for the natural bovine specimen at 5%, 10%, and 15% strain were 712.9 Pa, 522.1 Pa, and 363.3 Pa, respectively.Copyright © 2013 by ASME
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聚乙烯醇/聚乙烯吡咯烷酮(PVA/PVP)椎间盘聚合物的力学性能
椎间盘是人体最重要的结构之一。它提供支撑并实现脊柱的六个自由度(6DOF)运动:屈曲,伸展,左右侧向弯曲,压缩和轴向旋转。当个体患有退行性椎间盘疾病时,髓核恶化,导致椎间盘关节丧失。为了解决这个问题,可以使用髓核的替代物。本研究的目的是评估由水凝胶聚合物组成的潜在髓核替代物。采用95%质量的聚乙烯醇(PVA)和5%质量的聚乙烯醇吡咯烷酮(PVP)物理交联法制备了水凝胶。由于PVA和PVP在物理交联时具有天然的生物相容性,因此选择PVA和PVP作为水凝胶植入物。为了评估水凝胶的力学效果,设计并构建了一个滑块曲柄机构,与通用力学测试系统接口,产生6自由度运动。利用流变仪测定了聚合物的粘弹性特性,通过计算低频振荡剪切变形下的复合剪切模量(G*)来确定PVA/PVP水凝胶聚合物的弹性模量(G′)和粘性模量(G″)。这允许研究分离髓核和水凝胶植入物的粘弹性性能。在5%、10%和15%应变条件下测试水凝胶的弹性模量,结果分别为228.6 Pa、988.8 Pa和1793 Pa。而天然牛试样在5%、10%和15%应变下的弹性模量分别为712.9 Pa、522.1 Pa和363.3 Pa。ASME版权所有©2013
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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