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通过粗粒度分子动力学模拟探究核孔复合体的无序结构域

Probing the disordered domain of the nuclear pore complex through coarse-grained molecular dynamics simulations.

作者信息

Ghavami Ali, Veenhoff Liesbeth M, van der Giessen Erik, Onck Patrick R

机构信息

Zernike Institute for Advanced Materials, University of Groningen, Groningen, The Netherlands.

European Institute for the Biology of Ageing, University of Groningen, Groningen, The Netherlands.

出版信息

Biophys J. 2014 Sep 16;107(6):1393-402. doi: 10.1016/j.bpj.2014.07.060.

Abstract

The distribution of disordered proteins (FG-nups) that line the transport channel of the nuclear pore complex (NPC) is investigated by means of coarse-grained molecular dynamics simulations. A one-bead-per-amino-acid model is presented that accounts for the hydrophobic/hydrophilic and electrostatic interactions between different amino acids, polarity of the solvent, and screening of free ions. The results indicate that the interaction of the FG-nups forms a high-density, doughnut-like distribution inside the NPC, which is rich in FG-repeats. We show that the obtained distribution is encoded in the amino-acid sequence of the FG-nups and is driven by both electrostatic and hydrophobic interactions. To explore the relation between structure and function, we have systematically removed different combinations of FG-nups from the pore to simulate inviable and viable NPCs that were previously studied experimentally. The obtained density distributions show that the maximum density of the FG-nups inside the pore does not exceed 185 mg/mL in the inviable NPCs, whereas for the wild-type and viable NPCs, this value increases to 300 mg/mL. Interestingly, this maximum density is not correlated to the total mass of the FG-nups, but depends sensitively on the specific combination of essential Nups located in the central plane of the NPC.

摘要

通过粗粒度分子动力学模拟研究了排列在核孔复合体(NPC)运输通道上的无序蛋白质(FG核孔蛋白)的分布。提出了一种每个氨基酸一个珠子的模型,该模型考虑了不同氨基酸之间的疏水/亲水和静电相互作用、溶剂的极性以及自由离子的屏蔽。结果表明,FG核孔蛋白的相互作用在NPC内部形成了一种高密度的、甜甜圈状的分布,这种分布富含FG重复序列。我们表明,所获得的分布是由FG核孔蛋白的氨基酸序列编码的,并且是由静电和疏水相互作用共同驱动的。为了探索结构与功能之间的关系,我们系统地从孔中去除了不同组合的FG核孔蛋白,以模拟先前通过实验研究的不可行和可行的NPC。所获得的密度分布表明,在不可行的NPC中,孔内FG核孔蛋白的最大密度不超过185mg/mL,而对于野生型和可行的NPC,该值增加到300mg/mL。有趣的是,这个最大密度与FG核孔蛋白的总质量无关,而是敏感地取决于位于NPC中心平面的必需核孔蛋白的特定组合。

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