Jiang Xi Zhuo, Lu Yufang, Luo Kai H, Ventikos Yiannis
Department of Mechanical Engineering, University College London, Torrington Place, London, UK.
Department of Automotive Engineering, Tsinghua University, Beijing, P.R. China.
Biorheology. 2019;56(2-3):89-100. doi: 10.3233/BIR-180193.
The endothelial glycocalyx plays a pivotal role in regulating blood flow, filtering blood components, sensing and transducing mechanical signals. These functions are intimately related to its dynamics at the molecular level.
The objective of this research is to establish the relationship between the functions of the endothelial glycocalyx and its dynamics at the molecular level.
To establish such a relationship, large-scale molecular dynamics simulations were undertaken to mimic the dynamics of the glycocalyx and its components in the presence of flow shear stresses.
First, motions of the glycocalyx core protein and the pertinent subdomains were scrutinised. Three-directional movements of the glycocalyx core protein were observed, although the flow was imposed only in the x direction. Such an observation contributes to understanding the glycocalyx redistribution as reported in experiments. Unsynchronised motion of the core protein subdomains was also spotted, which provides an alternative explanation of macroscopic phenomena. Moreover, the dynamics, root-mean-square-deviations and conformational changes of the sugar chains were investigated. Based on the findings, an alternative force transmission pathway, the role of sugar chains, and potential influence on signalling transduction pathways were proposed and discussed.
This study relates the functions of the glycocalyx with its microscopic dynamics, which fills a knowledge gap about the links between different scales.
内皮糖萼在调节血流、过滤血液成分、感知和传导机械信号方面发挥着关键作用。这些功能与其在分子水平上的动态变化密切相关。
本研究的目的是建立内皮糖萼功能与其在分子水平上的动态变化之间的关系。
为了建立这种关系,进行了大规模分子动力学模拟,以模拟在流动剪切应力存在下糖萼及其成分的动态变化。
首先,对糖萼核心蛋白及其相关亚结构域的运动进行了仔细研究。尽管仅在x方向施加了流动,但观察到了糖萼核心蛋白的三向运动。这一观察结果有助于理解实验中报道的糖萼重新分布。还发现了核心蛋白亚结构域的不同步运动,这为宏观现象提供了另一种解释。此外,还研究了糖链的动力学、均方根偏差和构象变化。基于这些发现,提出并讨论了一种替代的力传递途径、糖链的作用以及对信号转导途径的潜在影响。
本研究将糖萼的功能与其微观动态联系起来,填补了不同尺度之间联系的知识空白。