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Structure and Dynamics Study of LeuT Using the Markov State Model and Perturbation Response Scanning Reveals Distinct Ion Induced Conformational States

机译:利用马尔可夫状态模型和微扰响应扫描研究LeuT的结构和动力学揭示了不同的离子诱导构象态

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摘要

The bacterial leucine transporter (LeuT), a close homologue of the eukaryote monoamine transporters (MATs), currently serves as a powerful template for computer simulations of MATs. Transport of the amino acid leucine through the membrane is made possible by the sodium electrochemical potential. Recent reports indicate that the substrate transport mechanism is based on structural changes such as hinge movements of key transmembrane domains. In order to further investigate the role of sodium ions in the uptake of leucine, here we present a Markov state model analysis of atomistic simulations of lipid embedded LeuT in different environments, generated by varying the presence of binding pocket sodium ions and substrate. Six metastable conformations are found, and structural differences between them along with transition probabilities are determined. We complete the analysis with the implementation of perturbation response scanning on our system, determining the most sensitive and influential regions of LeuT, in each environment. Our results show that the occupation of sites Na1 and Na2, along with the presence of the substrate, selectively influences the geometry of LeuT. In particular, the occupation of each site Na1/Na2 has strong effects (in terms of changes in influence and/or sensitivity, as compared to the case without ions) in specific regions of LeuT, and the effects are different for simultaneous occupation. Our results strengthen the rationale and provide a conformational mechanism for a putative transport mechanism in which Na2 is necessary, but may not be sufficient, to initiate and stabilize extracellular substrate access to the binding pocket.
机译:细菌亮氨酸转运蛋白(LeuT)是真核生物单胺转运蛋白(MATs)的紧密同源物,目前是计算机模拟MATs的强大模板。钠电化学势使氨基酸亮氨酸通过膜的运输成为可能。最近的报道表明底物转运机制是基于结构变化,例如关键跨膜结构域的铰链运动。为了进一步研究钠离子在亮氨酸摄取中的作用,在此我们通过改变结合口袋中钠离子和底物的存在,在不同环境中对脂质嵌入的LeuT进行原子模拟的马尔可夫状态模型分析。找到六个亚稳态构象,并确定它们之间的结构差异以及跃迁概率。我们通过在系统上执行微扰响应扫描来完成分析,确定每种环境中LeuT最敏感和最有影响力的区域。我们的结果表明,位点Na1和Na2的占据以及底物的存在会选择性地影响LeuT的几何形状。尤其是,每个位点Na1 / Na2的占据在LeuT的特定区域都具有很强的影响力(与没有离子的情况相比,影响和/或敏感性的变化),并且同时占据的影响是不同的。我们的结果加强了基本原理,并为推定的转运机制提供了构象机制,在该机制中,Na2是必需的,但可能不足以启动和稳定细胞外底物进入结合口袋。

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