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半胱氨酸取代 ATP 合酶亚基 a 中的化学反应性定义了从膜两侧门控 H+运输的残基。

Chemical reactivities of cysteine substitutions in subunit a of ATP synthase define residues gating H+ transport from each side of the membrane.

机构信息

Department of Biomolecular Chemistry, School of Medicine and Public Health, University of Wisconsin, Madison, Wisconsin 53706, USA.

出版信息

J Biol Chem. 2010 Dec 17;285(51):39811-8. doi: 10.1074/jbc.M110.175844. Epub 2010 Oct 13.

Abstract

Subunit a plays a key role in coupling H(+) transport to rotations of the subunit c-ring in F(1)F(o) ATP synthase. In Escherichia coli, H(+) binding and release occur at Asp-61 in the middle of the second transmembrane helix (TMH) of F(o) subunit c. Based upon the Ag(+) sensitivity of Cys substituted into subunit a, H(+) are thought to reach Asp-61 via aqueous pathways mapping to surfaces of TMH 2-5. In this study we have extended characterization of the most Ag(+)-sensitive residues in subunit a with cysteine reactive methanethiosulfonate (MTS) reagents and Cd(2+). The effect of these reagents on ATPase-coupled H(+) transport was measured using inside-out membrane vesicles. Cd(2+) inhibited the activity of all Ag(+)-sensitive Cys on the cytoplasmic side of the TMHs, and three of these substitutions were also sensitive to inhibition by MTS reagents. On the other hand, Cd(2+) did not inhibit the activities of substitutions at residues 119 and 120 on the periplasmic side of TMH2, and residues 214 and 215 in TMH4 and 252 in TMH5 at the center of the membrane. When inside-out membrane vesicles from each of these substitutions were sonicated during Cd(2+) treatment to expose the periplasmic surface, the ATPase-coupled H(+) transport activity was strongly inhibited. The periplasmic access to N214C and Q252C, and their positioning in the protein at the a-c interface, is consistent with previous proposals that these residues may be involved in gating H(+) access from the periplasmic half-channel to Asp-61 during the protonation step.

摘要

亚基 a 在将 H+转运与 F1F0 ATP 合酶的亚基 c 环旋转偶联中起着关键作用。在大肠杆菌中,H+的结合和释放发生在 F0 亚基 c 的第二个跨膜螺旋(TMH)的中间的 Asp-61。基于取代亚基 a 中的半胱氨酸的 Ag+敏感性,认为 H+通过映射到 TMH2-5 表面的水相途径到达 Asp-61。在这项研究中,我们使用半胱氨酸反应性甲硫基磺酸盐(MTS)试剂和 Cd2+扩展了对亚基 a 中最敏感 Ag+残基的特征描述。使用外翻膜囊泡测量这些试剂对 ATP 酶偶联的 H+转运的影响。Cd2+抑制 TMHs 细胞质侧所有 Ag+敏感 Cys 的活性,并且这些取代中的三个对 MTS 试剂的抑制也敏感。另一方面,Cd2+不抑制 TMH2 周质侧残基 119 和 120、TMH4 中的残基 214 和 215 以及跨膜区 5 中的中心残基 252 的活性。当用 Cd2+处理时,对来自这些取代的每个外翻膜囊泡进行超声处理以暴露周质表面时,ATP 酶偶联的 H+转运活性受到强烈抑制。N214C 和 Q252C 的周质进入及其在蛋白质中的位置在 a-c 界面处,与之前的假设一致,即这些残基可能参与在质子化步骤中从周质半通道门控 H+进入 Asp-61。

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