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阐明一种工程化机械敏感通道中自发激活的分子基础。

Elucidating the molecular basis of spontaneous activation in an engineered mechanosensitive channel.

作者信息

Immadisetty Kalyan, Polasa Adithya, Shelton Reid, Moradi Mahmoud

机构信息

Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, AR 72701, United States.

出版信息

Comput Struct Biotechnol J. 2022 May 23;20:2539-2550. doi: 10.1016/j.csbj.2022.05.022. eCollection 2022.

Abstract

Mechanosensitive channel of large conductance (MscL) detects and responds to changes in the pressure profile of cellular membranes and transduces the mechanical energy into electrical and/or chemical signals. MscL can be activated using ultrasonic or chemical activation methods to improve the absorption of medicines and bioactive compounds into cells. However, re-engineering chemical signals such as pH change can trigger channel activation in MscL. This study elucidates the activation mechanism of an engineered MscL at an atomic level through a combination of equilibrium and non-equilibrium (NE) molecular dynamics (MD) simulations. Comparing the wild-type (WT) and engineered MscL activation processes suggests that the two systems are likely associated with different active states and different transition pathways. These findings indicate that (1) periplasmic loops play a key role in the activation process of MscL, (2) the loss of various backbone-backbone hydrogen bonds and salt bridge interactions in the engineered MscL channel causes the spontaneous opening of the channel, and (3) the most significant interactions lost during the activation process are between the transmembrane helices 1 and 2 in engineered MscL channel. The orientation-based biasing approach for producing and optimizing an open MscL model used in this work is a promising way to characterize unknown protein functional states and investigate the activation processes in ion channels and transmembrane proteins in general. This work paves the way for a computational framework for engineering more efficient pH-sensing mechanosensitive channels.

摘要

大电导机械敏感通道(MscL)可检测细胞膜压力分布的变化并做出响应,将机械能转化为电信号和/或化学信号。可使用超声或化学激活方法激活MscL,以提高药物和生物活性化合物进入细胞的吸收率。然而,重新设计诸如pH变化等化学信号可触发MscL中的通道激活。本研究通过平衡和非平衡(NE)分子动力学(MD)模拟相结合的方法,在原子水平上阐明了工程化MscL的激活机制。比较野生型(WT)和工程化MscL的激活过程表明,这两个系统可能与不同的活性状态和不同的转变途径相关。这些发现表明:(1)周质环在MscL的激活过程中起关键作用;(2)工程化MscL通道中各种主链-主链氢键和盐桥相互作用的丧失导致通道自发开放;(3)在激活过程中丧失的最显著相互作用发生在工程化MscL通道的跨膜螺旋1和2之间。本文用于生成和优化开放MscL模型的基于取向的偏差方法,是表征未知蛋白质功能状态以及总体研究离子通道和跨膜蛋白激活过程的一种很有前景的方法。这项工作为构建一个用于设计更高效pH敏感机械敏感通道的计算框架铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4436/9156883/3f67d4e03036/ga1.jpg

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