Department of Mechanical Engineering, University College London, Torrington Place, London WC1E 7JE, UK.
MOE Key Laboratory of Bioinformatics, School of Life Sciences, Tsinghua University, Beijing 100084, People's Republic of China.
J R Soc Interface. 2017 Dec;14(137). doi: 10.1098/rsif.2017.0780.
The glycocalyx has a prominent role in orchestrating multiple biological processes occurring at the plasma membrane. In this paper, an all-atom flow/glycocalyx system is constructed with the bulk flow velocity in the physiologically relevant ranges for the first time. The system is simulated by molecular dynamics using 5.8 million atoms. Flow dynamics and statistics in the presence of the glycocalyx are presented and discussed. Complex dynamic behaviours of the glycocalyx, particularly the sugar chains, are observed in response to blood flow. In turn, the motion of the glycocalyx, including swing and swirling, disturbs the flow by altering the velocity profiles and modifying the vorticity distributions. As a result, the initially one-dimensional forcing is spread to all directions in the region near the endothelial cell surface. Furthermore, the coupled dynamics exist not only between the flow and the glycocalyx but also within the glycocalyx molecular constituents. Shear stress distributions between one-dimer and three-dimer cases are also conducted. Finally, potential force transmission pathways are discussed based on the dynamics of the glycocalyx constituents, which provides new insight into the mechanism of mechanotransduction of the glycocalyx. These findings have relevance in the pathologies of glycocalyx-related diseases, for example in renal or cardiovascular conditions.
糖萼在协调发生在质膜上的多个生物学过程中起着重要作用。在本文中,首次构建了一个具有生理相关范围内整体流速的全原子流动/糖萼系统。该系统通过分子动力学使用 580 万个原子进行模拟。本文展示并讨论了糖萼存在时的流动动力学和统计数据。糖萼的复杂动态行为,特别是糖链,在血流的作用下发生响应。反过来,糖萼的运动,包括摆动和旋转,通过改变速度分布和改变涡度分布来干扰流动。因此,最初的一维力在靠近内皮细胞表面的区域向所有方向传播。此外,流动和糖萼之间以及糖萼分子成分之间不仅存在耦合动力学。还进行了一单聚体和三聚体情况之间的剪切应力分布的比较。最后,根据糖萼成分的动力学讨论了潜在的力传递途径,这为糖萼机械转导的机制提供了新的见解。这些发现与糖萼相关疾病的病理学相关,例如肾脏或心血管疾病。