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Crystal Structures of Mutant Forms of the Yeast F1 ATPase Reveal Two Modes of Uncoupling

机译:酵母F1 ATPase的突变形式的晶体结构揭示了两种解耦

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The mitochondrial ATP synthase couples the flow of protons with the phosphorylation of ADP. A class of mutations, the mitochondrial genome integrity (mgi) mutations, has been shown to uncouple this process in the yeast mitochondrial ATP synthase. Four mutant forms of the yeast F1 ATPase with mgi mutations were crystallized; the structures were solved and analyzed. The analysis identifies two mechanisms of structural uncoupling: one in which the empty catalytic site is altered and in doing so, apparently disrupts substrate (phosphate) binding, and a second where the steric hindrance predicted between γLeu83 and βDP residues, Leu-391 and Glu-395, located in Catch 2 region, is reduced allowing rotation of the γ-subunit with less impedance. Overall, the structures provide key insights into the critical interactions in the yeast ATP synthase involved in the coupling process.
机译:线粒体ATP合酶与ADP的磷酸化致其磷酸化的质子流动。已经显示出一类突变,线粒体基因组完整性(MgI)突变,以在酵母线粒体ATP合酶中揭开该方法。用MGI突变的酵母F1 ATP酶的四种突变形式结晶;解决和分析了结构。该分析鉴定了两个结构解耦的机制:空催化位点被改变并在此时这样做,显然破坏了底物(磷酸盐)结合,以及在γLe83和βDP残留物之间预测的空间障碍,Leu-391和Glu之间的空间障碍-395位于捕获2区域中,允许具有较少阻抗的γ-亚基的旋转。总的来说,结构提供了对偶联过程中涉及的酵母ATP合酶中的关键相互作用的关键洞察。

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