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Multiscale Simulations Reveal Key Aspects of the Proton Transport Mechanism in the ClC-ec1 Antiporter

机译:多尺度模拟揭示了ClC-ec1反转运子中质子传输机制的关键方面。

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摘要

Multiscale reactive molecular dynamics simulations are used to study proton transport through the central region of ClC-ec1, a widely studied ClC transporter that enables the stoichiometric exchange of 2 Cl ions for 1 proton (H+). It has long been known that both Cl and proton transport occur through partially congruent pathways, and that their exchange is strictly coupled. However, the nature of this coupling and the mechanism of antiporting remain topics of debate. Here multiscale simulations have been used to characterize proton transport between E203 (Gluin) and E148 (Gluex), the internal and external intermediate proton binding sites, respectively. Free energy profiles are presented, explicitly accounting for the binding of Cl along the central pathway, the dynamically coupled hydration changes of the central region, and conformational changes of Gluin and Gluex. We find that proton transport between Gluin and Gluex is possible in both the presence and absence of Cl in the central binding site, although it is facilitated by the anion presence. These results support the notion that the requisite coupling between Cl and proton transport occurs elsewhere (e.g., during proton uptake or release). In addition, proton transport is explored in the E203K mutant, which maintains proton permeation despite the substitution of a basic residue for Gluin. This collection of calculations provides for the first time, to our knowledge, a detailed picture of the proton transport mechanism in the central region of ClC-ec1 at a molecular level.
机译:多尺度反应分子动力学模拟用于研究质子通过ClC-ec1中心区域的迁移,ClC-ec1是一种广泛研究的ClC转运蛋白,能够将2 Cl 离子化学交换为1质子(H + )。长期以来,人们都知道Cl 和质子运输都是通过部分一致的途径发生的,并且它们的交换是严格耦合的。但是,这种耦合的性质和反向移植的机制仍然是争论的话题。在这里,多尺度模拟已被用来表征质子在E203(胶质)和E148(胶质)之间的传输,分别是内部和外部中间质子结合位点。给出了自由能曲线,明确说明了Cl 沿着中央路径的结合,中央区域的动态耦合水合变化以及谷蛋白和谷氨酸的构象变化。我们发现,在中央结合位点存在和不存在Cl 的情况下,质子和胶质之间的质子运输都是可能的,尽管阴离子的存在促进了质子运输。这些结果支持了这样的观念,即Cl 与质子运输之间必不可少的耦合发生在其他地方(例如,在质子吸收或释放期间)。此外,在E203K突变体中探索了质子运输,尽管碱性残基取代了谷蛋白,该突变体仍保持质子渗透。据我们所知,这一计算集合首次提供了在分子水平上ClC-ec1中心区域质子传输机制的详细情况。

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