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New insights of membrane environment effects on MscL channel mechanics from theoretical approaches.

机译:膜环境对MscL通道力学影响的新见解,来自理论方法。

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The prokaryotic mechanosensitive channel of large conductance (MscL) is a remarkable integral membrane protein. During hypo-osmotic shock, it responses to membrane tension through large conformational changes, that lead to an open state of the pore. The structure of the channel from Mycobacterium tuberculosis has been resolved in the closed state. Numerous experiments have attempted to trap the channel in its open state but they did not succeed in obtaining a structure. A gating mechanism has been proposed based on different experimental data but there is no experimental technique available to follow this process in atomic details. In addition, it has been shown that a decrease of the lipid bilayer thickness lowered MscL activation energy and stabilized a structurally distinct closed channel intermediate. Here, we use atomistic molecular dynamics simulations to investigate the effect of the lipid bilayer thinning on our model of the structure of the Escherichia coli. We thoroughly analyze simulations of the channel embedded in two pre-equilibrated membranes differing by their hydrophobic tail length (DMPE and POPE). The MscL structure remains stable in POPE, whereas a distinct structural state is obtained in DMPE in response to hydrophobic mismatch. This latter is obtained by tilts and kinks of the transmembrane helices, leading to a widening and a diminution of the channel height. Part of these motions is guided by a competition between solvent and lipids for the interaction with the periplasmic loops. We finally conduct a principal component analysis of the simulation and compare anharmonic motions with harmonic ones, previously obtained from a coarse-grained normal mode analysis performed on the same structural model. Significant similarities exist between low-frequency harmonic motions and those observed with essential dynamics in DMPE. In summary, change in membrane thickness permits to accelerate the conformational changes involved in the mechanics of the E. coli channel, providing a closed structural intermediate en route to the open state. These results give clues for better understanding why the channel activation energy is lowered in a thinner membrane.
机译:大电导(MscL)的原核机械敏感通道是一种引人注目的整体膜蛋白。在低渗性休克期间,它通过大的构象变化对膜张力作出反应,从而导致孔的开放状态。结核分枝杆菌通道的结构已在封闭状态下解析。许多实验试图将通道捕获为开放状态,但未成功获得结构。已经基于不同的实验数据提出了门控机制,但是目前尚无实验技术可用于跟踪原子细节。另外,已经表明脂质双层厚度的降低降低了MscL活化能并稳定了结构上独特的闭合通道中间体。在这里,我们使用原子分子动力学模拟来研究脂质双层变薄对我们的大肠杆菌结构模型的影响。我们彻底分析了嵌入在两个预平衡膜中的通道的模拟,该膜的疏水性尾部长度不同(DMPE和POPE)。 MscL结构在POPE中保持稳定,而在DMPE中响应疏水性错配获得了独特的结构状态。后者是通过跨膜螺旋的倾斜和扭结而获得的,导致通道高度的扩大和减小。这些运动的一部分受溶剂和脂质之间竞争与周质环相互作用的指导。最后,我们进行了模拟的主成分分析,并将非谐运动与谐波运动进行了比较,这些运动以前是从对相同结构模型执行的粗粒度正态分析中获得的。低频谐波运动与在DMPE中通过基本动力学观察到的运动之间存在着很大的相似之处。总之,膜厚度的改变允许加速大肠杆菌通道力学中所涉及的构象变化,从而在进入打开状态的途中提供了封闭的结构中间体。这些结果为更好地理解为什么在较薄的膜中降低了通道活化能提供了线索。

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