Department of Mechanical Engineering, University College London, Torrington Place, London WC1E 7JE, United Kingdom.
Department of Neurology, Huashan Hospital, Fudan University, No. 12 Wulumuqi Zhong Road, Shanghai 200040, People's Republic of China.
J Chem Phys. 2020 Sep 14;153(10):105102. doi: 10.1063/5.0014177.
In the present research, the sodium ion transport across the endothelial glycocalyx layer (EGL) under an imposed electric field is investigated, for the first time, using a series of molecular dynamics simulations. The electric field is perpendicularly imposed on the EGL with varying strengths. The sodium ion molarity difference between the inner and outer layers of EGL, Δc, is used to quantify the sodium transport in the presence of the negatively charged glycocalyx sugar chains. Results suggest that a weak electric field increases Δc, regardless of whether the electric field is imposed perpendicularly inward or outward. By contrast, a strong electric field drives sodium ions to travel in the same orientation as the electric field. Scrutiny of the charge distribution of the glycocalyx sugar chains suggests that the electric field modifies the spatial layouts of glycocalyx atoms as it drives the transport of sodium ions. The modification in glycocalyx layouts further changes the inter-molecular interactions between glycocalyx sugar chains and sodium ions, thereby limiting the electric field control of ion transport. The sodium ions, in turn, alter the apparent bending stiffness of glycocalyx. Moreover, the negative charges of the glycocalyx sugar chains play an important role in maintaining structural stability of endothelial glycocalyx. Based on the findings, a hypothesis is proposed regarding the existence of a strength threshold of the electric field in controlling charged particles in the endothelium, which offers an alternative explanation for contrasting results in previous experimental observations.
在本研究中,首次使用一系列分子动力学模拟研究了在电场作用下钠离子穿过内皮糖萼层(EGL)的传输。电场垂直于 EGL 施加,强度不同。EGL 内外层之间的钠离子摩尔浓度差Δc 用于量化有带负电荷的糖萼糖链存在时的钠传输。结果表明,无论电场是向内还是向外垂直施加,弱电场都会增加Δc。相比之下,强电场会驱使钠离子沿电场方向移动。仔细观察糖萼糖链的电荷分布表明,电场在驱动钠离子传输的同时,会改变糖萼原子的空间布局。糖萼布局的改变进一步改变了糖萼糖链和钠离子之间的分子间相互作用,从而限制了电场对离子传输的控制。钠离子反过来又改变了糖萼的表观弯曲刚度。此外,糖萼糖链的负电荷在维持内皮糖萼的结构稳定性方面起着重要作用。基于这些发现,提出了一个关于电场控制内皮中带电粒子的强度阈值存在的假设,这为以前实验观察中出现的对比结果提供了另一种解释。