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模拟真菌质膜质子泵膜区的一个构象敏感区域。

Modeling a conformationally sensitive region of the membrane sector of the fungal plasma membrane proton pump.

作者信息

Monk B C, Feng W C, Marshall C J, Seto-Young D, Na S, Haber J E, Perlin D S

机构信息

Department of Biochemistry, Public Health Research Institute, New York, New York 10016.

出版信息

J Bioenerg Biomembr. 1994 Feb;26(1):101-15. doi: 10.1007/BF00763222.

Abstract

A molecular model for transmembrane segments 1 and 2 from the fungal proton pumping ATPase has been developed, and this structure is predicted to form a helical hairpin loop structure in the membrane. This region was selected because it is highly conformationally active and is believed to be an important site of action for clinically important therapeutics in related animal cell enzymes. The hairpin loop is predicted to form an asymmetric tightly packed structure that is stabilized by an N-cap between D140 and V142, by hydrogen bonding between residues in the turn region and the helices, and by pi-pi interactions between closely apposed aromatic residues. A short four-residue S-shaped turn is stabilized by hydrogen bonding but is predicted to be conformationally heterogeneous. The principal effect of mutations within the hairpin head region is to destabilize the local close packing of side groups which disrupts the pattern of hydrogen bonding in and around the turn region. Depending on the mutation, this causes either a localized or a more global distortion of the primary structure in the hairpin region. These altered structures may explain the effects of mutations in transmembrane segments 1 and 2 on ATP hydrolysis, sensitivity to vanadate, and electrogenic proton transport. The conformational sensitivity of the hairpin structure around the S-turn may also account for the effects of SCH28080 and possibly ouabain in blocking ATPase function in related animal cell enzymes. Finally, the model of transmembrane segments 1 and 2 serves as a template to position transmembrane segments 3 and 8. This model provides a new view of the H(+)-ATPase that promotes novel structure/function experimentation and could serve as the basis for a more detailed model of the membrane sector of this enzyme.

摘要

已构建了真菌质子泵ATP酶跨膜片段1和2的分子模型,该结构预计在膜中形成螺旋发夹环结构。选择该区域是因为它具有高度的构象活性,并且被认为是相关动物细胞酶中临床重要治疗药物的重要作用位点。预计发夹环会形成不对称的紧密堆积结构,该结构通过D140和V142之间的N-帽、转角区域与螺旋中残基之间的氢键以及紧密相邻的芳香族残基之间的π-π相互作用而稳定。一个由四个残基组成的短S形转角通过氢键稳定,但预计其构象是异质的。发夹头部区域内突变的主要影响是破坏侧链基团的局部紧密堆积,从而扰乱转角区域及其周围的氢键模式。根据突变情况,这会导致发夹区域一级结构的局部或更全局的扭曲。这些改变的结构可能解释了跨膜片段1和2中突变对ATP水解、对钒酸盐的敏感性以及质子电转运的影响。S形转角周围发夹结构的构象敏感性也可能解释了SCH28080以及可能的哇巴因在阻断相关动物细胞酶中ATP酶功能方面的作用。最后,跨膜片段1和2的模型可作为定位跨膜片段3和8的模板。该模型为H(+)-ATP酶提供了新的视角,促进了新的结构/功能实验,并且可以作为该酶膜区更详细模型的基础。

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