通过松弛时间分布谱了解胶原基质的粘弹性行为。

Biomatter Pub Date : 2013-07-01 Epub Date: 2013-04-01 DOI:10.4161/biom.24651
Bin Xu, Haiyue Li, Yanhang Zhang
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引用次数: 50

摘要

本研究旨在通过研究应力松弛试验获得的松弛时间分布谱,了解胶原基质的宏观粘弹性行为。研究了水合胶原凝胶和脱水胶原薄膜作为两种不同水合水平的胶原基质。用Genipin溶液诱导胶原基质交联。进行了双轴应力松弛试验来表征胶原基质的粘弹性行为。水合和脱水胶原基质的应力松弛率均表现为初始应力水平线性依赖关系。交联增加会降低胶原凝胶的粘度,但对薄膜的影响可以忽略不计。对应力松弛数据进行拉普拉斯逆变换,得到松弛时间分布谱。在连续光谱中,大多数胶原基质在短松弛时间(0.3s ~1 s)、中松弛时间(3s ~90 s)和长松弛时间(> 200 s)出现3个峰,可能对应的松弛机制涉及纤维、纤维间和纤维滑动。在较高的初始应力水平下,观察到中间峰的分裂,这表明随着机械载荷的增加,纤维水平上的结构不均匀性增加。长期峰值的强度随着初始应力水平的升高而增加,表明胶原原纤维在较高水平的组织应变下参与。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Understanding the viscoelastic behavior of collagen matrices through relaxation time distribution spectrum.

Understanding the viscoelastic behavior of collagen matrices through relaxation time distribution spectrum.

Understanding the viscoelastic behavior of collagen matrices through relaxation time distribution spectrum.

Understanding the viscoelastic behavior of collagen matrices through relaxation time distribution spectrum.

This study aims to provide understanding of the macroscopic viscoelastic behavior of collagen matrices through studying the relaxation time distribution spectrum obtained from stress relaxation tests. Hydrated collagen gel and dehydrated collagen thin film was exploited as two different hydration levels of collagen matrices. Genipin solution was used to induce crosslinking in collagen matrices. Biaxial stress relaxation tests were performed to characterize the viscoelastic behavior of collagen matrices. The rate of stress relaxation of both hydrated and dehydrated collagen matrices shows a linear initial stress level dependency. Increased crosslinking reduces viscosity in collagen gel, but the effect is negligible for thin film. Relaxation time distribution spectrum was obtained from the stress relaxation data by inverse Laplace transform. For most of the collagen matrices, three peaks at the short (0.3s ~1 s), medium (3s ~90 s), and long relaxation time (> 200 s) were observed in the continuous spectrum, which likely corresponds to relaxation mechanisms involve fiber, inter-fibril, and fibril sliding. Splitting of the middle peak was observed at higher initial stress levels suggesting increased structural heterogeneity at the fibril level with mechanical loading. The intensity of the long-term peaks increases with higher initial stress levels indicating the engagement of collagen fibrils at higher levels of tissue strain.

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