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Functional consequence of positive selection revealed through rational mutagenesis of human myeloperoxidase

机译:通过人髓过氧化物酶的合理诱变揭示了阳性选择的功能结果

摘要

Myeloperoxidase (MPO) is a member of the mammalian heme peroxidase (MHP) multigene family. Whereas all MHPs oxidize specific halides to generate the corresponding hypohalous acid, MPO is unique in its capacity to oxidize chloride at physiologic pH to produce hypochlorous acid (HOCl), a potent microbicide that contributes to neutrophil-mediated host defense against infection. We have previously resolved the evolutionary relationships in this functionally diverse multigene family and predicted in silico that positive Darwinian selection played a major role in the observed functional diversities (Loughran NB, O’Connor B, O’Fagain C, O’Connell MJ. 2008. The phylogeny of the mammalian heme peroxidases and the evolution of their diverse functions. BMC Evol Biol. 8:101). In this work, we have replaced positively selected residues asparagine 496 (N496), tyrosine 500 (Y500), and leucine 504 (L504) with the amino acids present in the ancestral MHP and have examined the effects on the structure, biosynthesis, and activity of MPO. Analysis in silico predicted that N496F, Y500F, or L504T would perturb hydrogen bonding in the heme pocket of MPO and thus disrupt the structural integrity of the enzyme. Biosynthesis of the mutants stably expressed in human embryonic kidney 293 cells yielded apoproMPO, the heme-free, enzymatically inactive precursor of MPO, that failed to undergo normal maturation or proteolytic processing. As a consequence of the maturational arrest at the apoproMPO stage of development, cells expressing MPO with mutations N496F, Y500F, L504T, individually or in combination, lacked normal peroxidase or chlorinating activity. Taken together, our data provide further support for the in silico predictions of positive selection and highlight the correlation between positive selection and functional divergence. Our data demonstrate that directly probing the functional importance of positive selection can provide important insights into understanding protein evolution.
机译:髓过氧化物酶(MPO)是哺乳动物血红素过氧化物酶(MHP)多基因家族的成员。尽管所有MHP都会氧化特定的卤化物以生成相应的次卤酸,但MPO在生理pH下氧化氯化物以生成次氯酸(HOCl)的能力是独特的,次氯酸是一种有效的杀微生物剂,有助于中性粒细胞介导的宿主抵抗感染。我们之前已经解决了这个功能多样的多基因家族中的进化关系,并通过计算机模拟预测,达尔文的积极选择在观察到的功能多样性中起着重要作用(Loughran NB,O'Connor B,O'Fagain C,O'Connell MJ。2008)。哺乳动物血红素过氧化物酶的系统发育及其各种功能的进化(BMC Evol Biol。8:101)。在这项工作中,我们用祖先MHP中存在的氨基酸替换了阳性选择的天冬酰胺496(N496),酪氨酸500(Y500)和亮氨酸504(L504)残基,并研究了其对结构,生物合成和活性的影响MPO。计算机分析表明,N496F,Y500F或L504T会扰乱MPO血红素口袋中的氢键,从而破坏酶的结构完整性。在人类胚胎肾293细胞中稳定表达的突变体的生物合成产生了apoproMPO,即无血红素,无酶活性的MPO前体,无法进行正常的成熟或蛋白水解过程。由于在apoproMPO发育阶段成熟停滞的结果,表达具有突变N496F,Y500F,L504T的MPO的细胞单独或组合缺乏正常的过氧化物酶或氯化活性。综上所述,我们的数据为正选择的计算机模拟预测提供了进一步的支持,并突出了正选择与功能差异之间的相关性。我们的数据表明,直接探索阳性选择的功能重要性可以为了解蛋白质进化提供重要见解。

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