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Direct Observation of the Uptake of Outer Membrane Proteins by the Periplasmic Chaperone Skp

机译:由周质陪护sKp外膜蛋白质的摄取的直接观察

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摘要

The transportation of membrane proteins through the aqueous subcellular space is an important and challenging process. Its molecular mechanism and the associated structural change are poorly understood. Periplasmic chaperones, such as Skp in Escherichia coli, play key roles in the transportation and protection of outer membrane proteins (OMPs) in Gram-negative bacteria. The molecular mechanism through which Skp interacts with and protects OMPs remains mysterious. Here, a combined experimental and molecular dynamics simulation study was performed to gain the structural and dynamical information in the process of OMPs and Skp binding. Stopped-flow experiments on site specific mutated and labeled Skp and several OMPs, namely OmpC, the transmembrane domain of OmpA, and OmpF, allowed us to obtain the mechanism of OMP entering the Skp cavity, and molecular dynamics simulations yielded detailed molecular interactions responsible for this process. Both experiment and simulation show that the entrance of OMP into Skp is a highly directional process, which is initiated by the interaction between the N-terminus of OMP and the bottom “tentacle” domain of Skp. The opening of the more flexible tentacle of Skp, the non-specific electrostatic interactions between OMP and Skp, and the constant formation and breaking of salt bridges between Skp and its substrate together allow OMP to enter Skp and gradually “climb” into the Skp cavity in the absence of an external energy supply.
机译:膜蛋白通过水亚细胞空间的运输是重要且具有挑战性的过程。人们对其分子机制和相关的结构变化知之甚少。周质伴侣,例如大肠杆菌中的Skp,在革兰氏阴性细菌的外膜蛋白(OMP)的运输和保护中起着关键作用。 Skp与OMP相互作用并保护OMP的分子机制仍然是个谜。在这里,进行了组合的实验和分子动力学模拟研究,以获取OMP和Skp结合过程中的结构和动力学信息。在特定位点突变和标记的Skp以及几种OMP(即OmpC,OmpA的跨膜结构域和OmpF)的停流实验使我们能够获得OMP进入Skp腔的机理,分子动力学模拟产生了负责分子的详细分子相互作用这个过程。实验和仿真均表明,OMP进入Skp是一个高度定向的过程,这是由OMP的N末端与Skp底部“触角”域之间的相互作用引发的。 Skp更具弹性的触手的开口,OMP与Skp之间的非特异性静电相互作用,Skp及其底物之间盐桥的不断形成和破坏一起使OMP进入Skp并逐渐“爬升”到Skp腔中在没有外部能源供应的情况下。

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