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生物相容的液晶弹性体模拟椎间盘。

Biocompatible liquid-crystal elastomers mimic the intervertebral disc.

机构信息

Department of Mechanical Engineering, University of Wyoming, Laramie, WY, 82071, USA.

Department of Mechanical Engineering, University of Wyoming, Laramie, WY, 82071, USA.

出版信息

J Mech Behav Biomed Mater. 2020 Jul;107:103757. doi: 10.1016/j.jmbbm.2020.103757. Epub 2020 Mar 30.

Abstract

The hierarchical and anisotropic mechanical behavior requirement of load-bearing soft tissues limits the utility of conventional elastomeric materials as a replacement for soft-tissue materials. Liquid-crystal elastomers (LCEs) have the potential to excel in this regard owing to its unique combination of mesogenic order in an elastomeric network. In this study, the mechanical behavior of the LCEs relevant to load-bearing biomedical applications was explored. LCEs with different network orientations (i.e., mesogen alignments) were investigated by fabricating the LCEs with polydomain and monodomain configurations. The polydomain and monodomain LCEs with the same degree of network crosslinking demonstrated diverse mechanical behavior, ranging from highly stiff and elastic nature to high damping capacity, depending on the loading direction with respect to the network alignment. The LCEs were also capable of matching the anisotropic mechanical behavior of an intervertebral disc. Additional studies were conducted on the in vivo biological response of LCEs upon subcutaneous implantation, as well as on the effect of the exposure to an in vitro simulated physiological environment on the mechanical behavior. The LCEs' mechanical response was negligibly affected when exposed to biomedically relevant conditions. Furthermore, the solid and porous LCEs did not show any adverse effect on the surrounding tissues when implanted subcutaneously in rats. The biological response allows for tissue ingrowth and helps illustrate their utility in implantable biological devices. Finally, the utility of LCEs to mimic the mechanical function of biological tissue such as intervertebral disc was demonstrated by fabricating a proof of concept total disc replacement device.

摘要

承重软组织的分层各向异性力学性能要求限制了传统弹性体材料作为软组织替代材料的应用。液晶弹性体(LCE)由于其在弹性网络中存在介晶有序的独特组合,有望在这方面表现出色。在这项研究中,探索了与承重生物医学应用相关的 LCE 的力学性能。通过制备具有多畴和单畴结构的 LCE,研究了具有不同网络取向(即介晶取向)的 LCE。具有相同交联程度的多畴和单畴 LCE 表现出不同的力学性能,其范围从高刚性和弹性到高阻尼能力,具体取决于相对于网络取向的加载方向。LCE 还能够匹配椎间盘的各向异性力学性能。还对 LCE 皮下植入后的体内生物学反应以及暴露于体外模拟生理环境对其力学性能的影响进行了额外的研究。当暴露于与生物医学相关的条件时,LCE 的力学响应可忽略不计。此外,皮下植入大鼠后,固体和多孔 LCE 对周围组织没有任何不良影响。生物反应允许组织向内生长,并有助于说明它们在可植入生物装置中的应用。最后,通过制造概念验证型全椎间盘置换装置,证明了 LCE 模拟生物组织(如椎间盘)力学功能的用途。

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