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Computer simulations of the translocation and unfolding of a protein pulled mechanically through a pore

机译:机械模拟通过孔拉动的蛋白质的移位和展开的计算机模拟

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Protein degradation by ATP-dependent proteases and protein import into the mitochondrial matrix involve the unfolding of proteins upon their passing through narrow constrictions.It has been hypothesized that the cellular machinery accomplishes protein unfolding by pulling mechanically at one end of the polypeptide chain.Here,we use Langevin dynamics simulations of a minimalist off-lattice model to examine this hypothesis and to study the unfolding of a protein domain pulled mechanically through a long narrow pore.We compute the potential of mean force (PMF) experienced by the domain as a function of its displacement along the pore and identify the unfolding intermediates corresponding to the local minima of the PMF.The observed unfolding mechanism is different from that found when the two termini are pulled apart,as in single-molecule mechanical unfolding experiments.It depends on the pore diameter,the magnitude of the pulling force,and on whether the force is applied at the N- or the C-terminus of the chain.Consequently,the translocation time exhibits a pulling force dependence that is more complex than a simple exponential function expected on the basis of simple phenomenological models of translocation.
机译:通过ATP依赖性蛋白酶降解蛋白质和将蛋白质导入线粒体基质中,涉及到蛋白质在狭窄狭窄处通过时的解折叠。据推测,细胞机制通过在多肽链的一端机械拉动来完成蛋白质的解折叠。我们使用极简格子模型的Langevin动力学模拟来检验这一假设,并研究机械拉动穿过狭长狭长孔的蛋白质结构域的展开。我们计算该结构域作为函数的平均力(PMF)的潜力观察到的展开机理与单末端机械展开实验中将两个末端拉开时发现的展开机理不同。孔径,拉力的大小以及是否在N或因此,易位时间表现出的拉力依赖性比根据简单易位现象模型所预期的简单指数函数要复杂得多。

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