Biomechanical properties of endothelial glycocalyx: An imperfect pendulum

Q1 Medicine
Xi Zhuo Jiang , Michael S. Goligorsky
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引用次数: 6

Abstract

Endothelial glycocalyx plays a crucial role in hemodynamics in health and disease, yet studying it is met by multiple technical hindrances. We attempted to outline our views on some biomechanical properties of endothelial glycocalyx, which are potentially amenable to mathematical modeling. We start with the null-hypothesis ascribing to glycocalyx the properties of a pendulum and reject this hypothesis on the grounds of multiple obstacles for pendulum behavior, such as rich decoration with flexible negatively charged side-chains, variable length and density, fluid fixation to the plasma membrane. We next analyze the current views on membrane attachments to the cortical actin web, its pulsatile contraction-relaxation cycles which rebound to the changes in tension of the plasma membrane. Based on this, we consider the outside-in signaling, the basis for mechanotransduction, and the dampening action of the inside-out signaling. The aperiodic oscillatory motions of glycocalyx and cortical actin web underlie our prediction of two functional pacemakers. We next advance an idea that the glycocalyx, plasma membrane, and cortical actin web represent a structure-functional unit and propose the concept of tensegrity model. Finally, we present our recent data suggesting that erythrocytes are gliding or hovering and rotating over the surface of intact glycocalyx, whereas the rotational and hovering components of their passage along the capillaries are lost when glycocalyx of either is degraded. These insights into the mechanics of endothelial glycocalyx motions may be of value in crosspollination between biomechanics, physiology, and pathophysiology for deeper appreciation of its rich untapped resources in health and pharmacotherapy in disease.

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内皮糖萼的生物力学特性:一个不完美的钟摆
内皮糖萼在健康和疾病的血流动力学中起着至关重要的作用,但对其的研究却遇到了许多技术障碍。我们试图概述我们对内皮糖萼的一些生物力学特性的看法,这些特性可能适合数学建模。我们从零假设开始,将糖萼的性质归因于钟摆,并基于钟摆行为的多重障碍,如具有柔性负电荷侧链的丰富装饰,可变的长度和密度,质膜的流体固定,拒绝了这一假设。接下来,我们分析了目前关于膜附着在皮质肌动蛋白网上的观点,它的脉动收缩-松弛周期随着质膜张力的变化而反弹。在此基础上,我们考虑了由外而内的信号,机械转导的基础,以及由内而外的信号的抑制作用。糖萼和皮质肌动蛋白网的非周期性振荡运动是我们预测两个功能性起搏器的基础。接下来,我们提出糖萼、质膜和皮质肌动蛋白网代表一个结构-功能单元的观点,并提出了张拉整体模型的概念。最后,我们提供了最近的数据,表明红细胞在完整的糖萼表面滑行或悬停和旋转,而当糖萼被降解时,红细胞沿着毛细血管的旋转和悬停成分就会丢失。这些关于内皮糖萼运动机制的见解可能对生物力学、生理学和病理生理学之间的交叉授粉有价值,可以更深入地了解其在健康和疾病药物治疗方面丰富的未开发资源。
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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来源期刊
Matrix Biology Plus
Matrix Biology Plus Medicine-Histology
CiteScore
9.00
自引率
0.00%
发文量
25
审稿时长
105 days
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