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Ab initio calculations and validation of the pH-dependent structures of the His37-Trp41 quartet the heart of acid activation and proton conductance in the M2 protein of Influenza A virus

机译:从头算和His37-Trp41四重奏的pH依赖结构的验证和验证A流感病毒M2蛋白中酸激活和质子传导的心脏

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摘要

The M2 protein of Influenza A virus forms a homotetrameric proton channel activated by low pH. The His37-Trp41 quartet is the heart of acid activation and proton conductance, but the functional mechanism is still controversial. We carried out ab initio calculations to model the pH-dependent structures of the His37-Trp41 quartet. In our model at neutral pH, the four His37 residues are configured into a pair of dimers; in each dimer, a proton is shared between Nδ1 on one residue and Nε2 on the other, and, under the restraint of the backbone, the two imidazole rings are nearly parallel, in contrast to a perpendicular arrangement for a free imidazole-imidazolium dimer. Within each dimer the +1 charge is highly delocalized, contributing to its stabilization in a low dielectric environment. The Nδ1-H-Nε2 strong hydrogen bonds result in significantly downfield shifted Nδ1 and Nε2 chemical shifts (at 169.7 and 167.6 ppm, respectively), in good agreement with experiments. In our model at acidic pH (where the channel becomes activated), a third proton binds to an imidazole-imidazolium dimer; the imidazole rings rotate away (each by ~55°) from each other, destroying the dimer structure. The two imidazoliums are stabilized by hydrogen bonds with water molecules and a cation-π interaction with Trp41. The Raman spectra calculated for the His37-Trp41 quartet at neutral and acidic pH are in agreement with experiments. Our calculations support an activation and conductance mechanism in which a hydronium ion from the N-terminal side passes a proton to an imidazole-imidazolium dimer; when the Trp41 gate is open, relaying of a proton onto a water molecule from the C-terminal side then allows the imidazole-imidazolium dimer to reform and be ready for the next round of proton conductance.
机译:甲型流感病毒的M2蛋白形成被低pH值激活的同型四聚体质子通道。 His37-Trp41四重奏是酸活化和质子传导的心脏,但其功能机制仍存在争议。我们进行了从头算来模拟His37-Trp41四重奏的pH依赖结构。在我们的模型中性pH下,四个His37残基被配置为一对二聚体。在每个二聚体中,一个残基上的Nδ1和另一个残基上的Nε2之间共享一个质子,并且在骨架的约束下,两个咪唑环几乎平行,这与游离的咪唑-咪唑鎓二聚体的垂直排列相反。在每个二聚体中,+ 1电荷高度离域,从而有助于其在低介电环境中的稳定性。 Nδ1-H-Nε2的强氢键导致显着下移的Nδ1和Nε2化学位移(分别为169.7和167.6 ppm),与实验吻合良好。在我们的模型中,在酸性pH下(通道被激活),第三个质子与咪唑-咪唑鎓二聚体结合;咪唑环彼此分开旋转(每个旋转约55°),从而破坏二聚体结构。两个咪唑鎓盐通过与水分子的氢键以及与Trp41的阳离子-π相互作用而稳定。在中性和酸性pH下为His37-Trp41四重峰计算的拉曼光谱与实验一致。我们的计算支持一种激活和电导机制,其中N端的hydro离子将质子传递到咪唑-咪唑鎓二聚体。当Trp41闸门打开时,将质子从C端传递到水分子上,然后使咪唑-咪唑二聚体重整并为下一轮质子传导做好准备。

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