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Conformational changes in gastric H+/K+-ATPase monitored by difference Fourier-transform infrared spectroscopy and hydrogen/deuterium exchange

机译:差异傅立叶变换红外光谱法和氢/氘交换监测胃H + / K + -ATPase的构象变化

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摘要

Gastric H+/K+-ATPase is a P-type ATPase responsible for acid secretion in the stomach. This protein adopts mainly two conformations called E1 and E2. Even though two high-resolution structures for a P-ATPase in these conformations are available, little structural information is available about the transition between these two conformations. In the present study, we used two experimental approaches to investigate the structural differences that occur when gastric ATPase is placed in the presence of various ligands and ligand combinations. We used attenuated total reflection–Fourier-transform IR experiments under a flowing buffer to modify the environment of the protein inside the measurement cell. The high accuracy of the results allowed us to demonstrate that the E1–E2 transition induces a net change in the secondary structure that concerns 10–15 amino acid residues of a total of 1324 in the proteins. The E2.K+ structure is characterized by a decreased β-sheet content and an increase in the disordered structure content with respect to the E1 form of the enzyme. Modifications in the absorption of the side chain of amino acids are also suggested. By using hydrogen/deuterium-exchange kinetics, we show that tertiary-structure modifications occurred in the presence of the same ligands, but these changes involved several hundreds of residues. The present study suggests that conformational changes in the catalytic cycle imply secondary-structure rearrangements of small hinge regions that have an impact on large domain re-organizations.
机译:胃H + / K + -ATPase是负责胃酸分泌的P型ATPase。该蛋白主要采用两个构象,分别称为E1和E2。即使可以使用这些构象中的两个P-ATPase高分辨率结构,但有关这两个构象之间的过渡的结构信息很少。在本研究中,我们使用了两种实验方法来研究将胃ATPase置于各种配体和配体组合下时发生的结构差异。我们在流动的缓冲液下使用了衰减的全反射-傅立叶变换红外实验来修饰测量池中蛋白质的环境。结果的高度准确性使我们能够证明E1到E2过渡在二级结构中引起净变化,该结构涉及蛋白质中的13-24个氨基酸残基,总共1324个。相对于酶的E1​​形式,E2.K +结构的特征在于降低的β-折叠含量和无序结构含量的增加。还建议了氨基酸侧链吸收的修饰。通过使用氢/氘交换动力学,我们表明三级结构修饰发生在相同的配体存在下,但这些变化涉及数百个残基。本研究表明,催化循环中的构象变化意味着小铰链区的二级结构重排,这会对大域重组产生影响。

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