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Charged Residues Distribution Modulates Selectivity of the Open State of Human Isoforms of the Voltage Dependent Anion-Selective Channel

机译:带电的残基分布调节电压依赖性阴离子选择通道的人亚型开放态的选择性。

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摘要

Voltage Dependent Anion-selective Channels (VDACs) are pore-forming proteins located in the outer mitochondrial membrane. They are responsible for the access of ions and energetic metabolites into the inner membrane transport systems. Three VDAC isoforms exist in mammalian, but their specific role is unknown. In this work we have performed extensive (overall ∼5 µs) Molecular Dynamics (MD) simulations of the human VDAC isoforms to detect structural and conformational variations among them, possibly related to specific functional roles of these proteins. Secondary structure analysis of the N-terminal domain shows a high similarity among the three human isoforms of VDAC but with a different plasticity. In particular, the N-terminal domain of the hVDAC1 is characterized by a higher plasticity, with a ∼20% occurrence for the ‘unstructured’ conformation throughout the folded segment, while hVDAC2, containing a peculiar extension of 11 amino acids at the N-terminal end, presents an additional 310-helical folded portion comprising residues 10′ to 3, adhering to the barrel wall. The N-terminal sequences of hVDAC isoforms are predicted to have a low flexibility, with possible consequences in the dynamics of the human VDACs. Clear differences were found between hVDAC1 and hVDAC3 against hVDAC2: a significantly modified dynamics with possible important consequence on the voltage-gating mechanism. Charge distribution inside and at the mouth of the pore is responsible for a different preferential localization of ions with opposite charge and provide a valuable rationale for hVDAC1 and hVDAC3 having a Cl−/K+ selectivity ratio of 1.8, whereas hVDAC2 of 1.4. Our conclusion is that hVDAC isoforms, despite sharing a similar scaffold, have modified working features and a biological work is now requested to give evidence to the described dissimilarities.
机译:电压依赖性阴离子选择性通道(VDAC)是位于线粒体外膜上的成孔蛋白。它们负责使离子和高能代谢物进入内膜传输系统。哺乳动物中存在三种VDAC亚型,但其具体作用尚不清楚。在这项工作中,我们对人类VDAC同工型进行了广泛的(总共约5 µs)分子动力学(MD)模拟,以检测其中的结构和构象变异,可能与这些蛋白质的特定功能有关。 N末端域的二级结构分析显示,VDAC的三种人类同工型之间具有高度相似性,但具有不同的可塑性。尤其是,hVDAC1的N末端结构域具有较高的可塑性,在整个折叠段中约有20%的“非结构化”构象出现,而hVDAC2在N-端包含11个氨基酸的特殊延伸末端呈现出附加的310螺旋形折叠部分,该部分包含残留在枪管壁上的残渣10'至3。预计hVDAC亚型的N端序列具有较低的灵活性,可能会对人类VDAC的动力学产生影响。在hVDAC1和hVDAC3与hVDAC2之间发现了明显的差异:动态的显着修改,可能对电压门控机制产生重要影响。孔内和孔内的电荷分布导致具有相反电荷的离子的不同优先定位,并为具有Cl -/ K +

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