首页> 美国卫生研究院文献>Proceedings of the National Academy of Sciences of the United States of America >Three semidominant barley mutants with single amino acid substitutions in the smallest magnesium chelatase subunit form defective AAA+ hexamers
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Three semidominant barley mutants with single amino acid substitutions in the smallest magnesium chelatase subunit form defective AAA+ hexamers

机译:在最小的镁螯合酶亚基中具有单个氨基酸取代的三个半显性大麦突变体形成有缺陷的AAA +六聚体

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摘要

Many enzymes of the bacteriochlorophyll and chlorophyll biosynthesis pathways have been conserved throughout evolution, but the molecular mechanisms of the key steps remain unclear. The magnesium chelatase reaction is one of these steps, and it requires the proteins BchI, BchD, and BchH to catalyze the insertion of Mg2+ into protoporphyrin IX upon ATP hydrolysis. Structural analyses have shown that BchI forms hexamers and belongs to the ATPases associated with various cellular activities (AAA+) family of proteins. AAA+ proteins are Mg2+-dependent ATPases that normally form oligomeric ring structures in the presence of ATP. By using ATPase-deficient BchI subunits, we demonstrate that binding of ATP is sufficient to form BchI oligomers. Further, ATPase-deficient BchI proteins can form mixed oligomers with WT BchI. The formation of BchI oligomers is not sufficient for magnesium chelatase activity when combined with BchD and BchH. Combining WT BchI with ATPase-deficient BchI in an assay disrupts the chelatase reaction, but the presence of deficient BchI does not inhibit ATPase activity of the WT BchI. Thus, the ATPase of every WT segment of the hexamer is autonomous, but all segments of the hexamer must be capable of ATP hydrolysis for magnesium chelatase activity. We suggest that ATP hydrolysis of each BchI within the hexamer causes a conformational change of the hexamer as a whole. However, hexamers containing ATPase-deficient BchI are unable to perform this ATP-dependent conformational change, and the magnesium chelatase reaction is stalled in an early stage.
机译:细菌叶绿素和叶绿素生物合成途径的许多酶在整个进化过程中都是保守的,但关键步骤的分子机制仍不清楚。镁螯合酶反应是这些步骤之一,它需要蛋白质BchI,BchD和BchH催化ATP水解时Mg 2 + 插入原卟啉IX中。结构分析表明,BchI形成六聚体,属于与各种细胞活性(AAA + )蛋白质家族相关的ATPase。 AAA + 蛋白是Mg 2 + 依赖性ATPase,通常在ATP存在下形成寡聚环结构。通过使用ATPase缺陷型BchI亚基,我们证明了ATP的结合足以形成BchI低聚物。此外,ATPase缺陷型BchI蛋白可与WT BchI形成混合寡聚物。当与BchD和BchH结合使用时,BchI低聚物的形成不足以实现镁螯合酶的活性。在测定中将WT BchI与ATPase缺陷型BchI结合会破坏螯合酶反应,但缺陷BchI的存在不会抑制WT BchI的ATPase活性。因此,六聚体的每个WT片段的ATP酶是自主的,但是六聚体的所有片段必须能够ATP水解以产生镁螯合酶活性。我们建议六聚体中每个BchI的ATP水解会导致整个六聚体的构象变化。但是,含有ATPase缺陷型BchI的六聚体无法执行此ATP依赖的构象变化,并且镁螯合酶反应在早期就停止了。

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