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首页> 外文期刊>Biochimica et biophysica acta. Bioenergetics >Reaction mechanism catalyzed by the dissimilatory adenosine 5 '-phosphosulfate reductase. Adenosine 5 '-monophosphate inhibitor and key role of arginine 317 in switching the course of catalysis
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Reaction mechanism catalyzed by the dissimilatory adenosine 5 '-phosphosulfate reductase. Adenosine 5 '-monophosphate inhibitor and key role of arginine 317 in switching the course of catalysis

机译:由褪色腺苷5'磷硫酸盐还原酶催化的反应机理。 腺苷5'-单磷酸抑制剂和精氨酸317在切换催化过程中的关键作用

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摘要

The present research is a continuation of our work on dissimilatory reduction pathway of sulfate - involved in biogeochemical sulfur turnover. Adenosine 5'-phosphosulfate reductase (APSR) is the second enzyme in the dissimilatory pathway of the sulfate to sulfide reduction. It reversibly catalyzes formation of the sulfite anion (HSO3-) from adenosine 5'-phosphosulfate (APS) - the activated form of sulfate provided by ATP sulfurylase (ATPS). Two electrons required for this redox reaction derive from reduced FAD cofactor, which is suggested to be involved directly in the catalysis by formation of FADH-SO3- intermediate. The present work covers quantum-mechanical (QM) studies on APSR reaction performed for eight models of APSR active site. The cluster models were constructed based on two crystal structures (PDB codes: 2FJA and 2FJB), differing in conformation of Arg317 active site residue. The described results indicated the most feasible mechanism of APSR forward reaction, including formation of FADH(N)-SO3- adduct (with proton on N5 atom of isoalloxazine), tautomerization of FADH(N)-SO3- to FADH(O)-SO3- (with proton on C-O moiety of isoalloxazine), and its reductive cleavage to oxidized FAD and sulfite anion. The reverse reaction proceeds in the backward direction. It is suggested that it requires two AMP molecules, one acting as a substrate and another as an inhibitor of forward reaction, which forces change of Arg317 conformation from "arginine in" (2FJA) to "arginine out" (2FJB). Important role of Arg317 in switching the course of the APSR catalytic reaction is revealed by changing the direction of thermodynamic driving force. The presented research also shows the importance of the protonation pattern of the reduced FAD cofactor and protein residues within the active site.
机译:目前的研究是我们对硫酸盐的异化还原途径的工作 - 参与生物地良化学硫变异。腺苷5'-磷硫酸盐还原酶(APSR)是硫酸盐的硫酸盐的辐射途径中的第二酶。它可逆地催化来自腺苷5'-磷硫酸盐(APS)的亚硫酸盐阴离子(HSO3-)的形成 - 通过ATP硫脲基酶(ATP)提供的硫酸盐的活化形式。该氧化还原反应所需的两种电子从减少的FAD辅因子衍生,这表明通过形成FADH-SO3-中间体直接涉及催化。目前的工作涵盖了对APSR反应进行的量子 - 机械(QM)研究,用于八种型APSR活性位点。基于两个晶体结构(PDB码:2FJA和2FJB)构建群集模型,符合Arg317活性位点残留物的不同之处。所描述的结果表明APSR前进反应最可行的机制,包括FADH(N)-SO3-加合物的形成(用质子对异恶嗪的N5原子),FADH(N)-SO3-至FADH(O)-SO3的互变异化 - (用异恶嗪的CO部分的质子),其还原性切割与氧化的FAD和亚硫酸盐阴离子。反应在向后方向上进行。建议它需要两种AMP分子,一种作为基材的一种,其作为底物作为前进反应的抑制剂,其力在“精氨酸”(2FJA)中的变化转变为“精氨酸”(2FJB)。 ARG317在切换APSR催化反应过程中的重要作用,通过改变热力学驱动力的方向来揭示APSR催化反应。本研究还表明了活性位点内减少的FAD辅因子和蛋白质残留物的质量模式的重要性。

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