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拉伸弹性与压缩弹性和渗透性的不对称性有助于调节胶原凝胶中的交换。

Asymmetry of tensile versus compressive elasticity and permeability contributes to the regulation of exchanges in collagen gels.

机构信息

Institute of Industrial Science, The University of Tokyo, Tokyo 153-8505, Japan.

LIMMS, CNRS-IIS IRL 2820, The University of Tokyo, Tokyo 153-8505, Japan.

出版信息

Sci Adv. 2023 Aug 2;9(31):eadf9775. doi: 10.1126/sciadv.adf9775.

Abstract

The Starling principle describes exchanges between blood and tissues based on the balance of hydrostatic and osmotic flows. However, the permeation properties of the main constituent of tissues, namely, collagen, in response to the stress exerted by blood pressure remain poorly characterized. Here, we develop an instrument to determine the elasticity and permeability of collagen gels under tensile and compressive stress based on measuring the temporal change in pressure in an air cavity sealed at the outlet of a collagen slab. Data analysis with an analytical model reveals a drop in the permeability and enhanced strain stiffening of native collagen gels under compression versus tension, both effects being essentially lost after chemical cross-linking. Furthermore, we report the control of the permeability of native collagen gels using sinusoidal fluid injection, an effect explained by the asymmetric response in tension and compression. We lastly suggest that blood-associated pulsations could contribute to exchanges within tissues.

摘要

Starling 原理描述了血液和组织之间基于流体静力压和渗透压平衡的交换。然而,组织的主要成分——胶原蛋白对血压施加的压力的渗透特性仍未得到很好的描述。在这里,我们开发了一种仪器,通过测量密封在胶原蛋白板出口处的气腔中的压力随时间的变化,来确定拉伸和压缩应力下胶原蛋白凝胶的弹性和渗透性。通过分析模型对数据分析表明,与拉伸相比,天然胶原蛋白凝胶在压缩下的渗透性下降,应变硬化增强,这两种效应在化学交联后基本消失。此外,我们报告了使用正弦波流体注射来控制天然胶原蛋白凝胶的渗透性,这种效应可以用拉伸和压缩的不对称响应来解释。最后,我们提出血液相关的脉动可能有助于组织内的交换。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3365/10396291/ae7249ab5e92/sciadv.adf9775-f1.jpg

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