Bavi N, Bavi O, Vossoughi M, Naghdabadi R, Hill A P, Martinac B, Jamali Y
a Division of Molecular Cardiology and Biophysics , Victor Chang Cardiac Research Institute , Darlinghurst , NSW , Australia.
b St Vincent's Clinical School, Faculty of Medicine , University of New South Wales , Darlinghurst , NSW , Australia.
Channels (Austin). 2017 May 4;11(3):209-223. doi: 10.1080/19336950.2016.1249077. Epub 2016 Oct 18.
Gating of mechanosensitive (MS) channels is driven by a hierarchical cascade of movements and deformations of transmembrane helices in response to bilayer tension. Determining the intrinsic mechanical properties of the individual transmembrane helices is therefore central to understanding the intricacies of the gating mechanism of MS channels. We used a constant-force steered molecular dynamics (SMD) approach to perform unidirectional pulling tests on all the helices of MscL in M. tuberculosis and E. coli homologs. Using this method, we could overcome the issues encountered with the commonly used constant-velocity SMD simulations, such as low mechanical stability of the helix during stretching and high dependency of the elastic properties on the pulling rate. We estimated Young's moduli of the α-helices of MscL to vary between 0.2 and 12.5 GPa with TM2 helix being the stiffest. We also studied the effect of water on the properties of the pore-lining TM1 helix. In the absence of water, this helix exhibited a much stiffer response. By monitoring the number of hydrogen bonds, it appears that water acts like a 'lubricant' (softener) during TM1 helix elongation. These data shed light on another physical aspect underlying hydrophobic gating of MS channels, in particular MscL.
机械敏感(MS)通道的门控是由跨膜螺旋的一系列分级运动和变形驱动的,以响应双层张力。因此,确定单个跨膜螺旋的固有机械性能对于理解MS通道门控机制的复杂性至关重要。我们使用恒力引导分子动力学(SMD)方法对结核分枝杆菌和大肠杆菌同源物中MscL的所有螺旋进行单向拉伸测试。使用这种方法,我们可以克服常用的恒速SMD模拟中遇到的问题,例如拉伸过程中螺旋的机械稳定性低以及弹性特性对拉伸速率的高度依赖性。我们估计MscL的α螺旋的杨氏模量在0.2至12.5 GPa之间变化,其中TM2螺旋最硬。我们还研究了水对孔衬里TM1螺旋性能的影响。在没有水的情况下,该螺旋表现出更硬的响应。通过监测氢键的数量,似乎水在TM1螺旋伸长过程中起到了“润滑剂”(软化剂)的作用。这些数据揭示了MS通道,特别是MscL疏水门控背后的另一个物理方面。