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Velocity-Dependent Mechanical Unfolding of Bacteriorhodopsin Is Governed by a Dynamic Interaction Network

机译:细菌视紫红质的速度依赖性机械展开是由动态相互作用网络控制的。

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摘要

Bacteriorhodopsin is a model system for membrane proteins. This seven transmembrane helical protein is embedded within a membrane structure called purple membrane. Its structural stability against mechanical stress was recently investigated by atomic force microscopy experiments, in which single proteins were extracted from the purple membrane. Here, we study this process by all-atom molecular dynamics simulations, in which single bacteriorhodopsin molecules were extracted and unfolded from an atomistic purple membrane model. In our simulations, key features from the experiments like force profiles and location of key residues that resist mechanical unfolding were reproduced. These key residues were seen to be stabilized by a dynamic network of intramolecular interactions. Further, the unfolding pathway was found to be velocity-dependent. Simulations in which the mechanical stress was released during unfolding revealed relaxation motions that allowed characterization of the nonequilibrium processes during fast extraction.
机译:细菌视紫红质是膜蛋白的模型系统。这七个跨膜螺旋蛋白被嵌入称为紫色膜的膜结构内。最近通过原子力显微镜实验研究了其对机械应力的结构稳定性,其中从紫色膜中提取了单个蛋白质。在这里,我们通过全原子分子动力学模拟研究此过程,其中单个细菌视紫红质分子是从原子紫色膜模型中提取并展开的。在我们的模拟中,重现了实验的关键特征,例如力分布和抵抗机械展开的关键残渣的位置。这些关键残基被认为是由分子内相互作用的动态网络稳定的。此外,发现展开途径是速度依赖性的。在展开过程中释放机械应力的模拟显示出松弛运动,可以表征快速萃取过程中的非平衡过程。

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