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A highly conserved family of domains related to the DNA-glycosylase fold helps predict multiple novel pathways for RNA modifications

机译:与DNA糖基化酶折叠相关的高度保守的家族结构域有助于预测RNA修饰的多种新途径

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摘要

A protein family including mammalian NEMF, Drosophila caliban, yeast Tae2, and bacterial FpbA-like proteins was first defined over a decade ago and found to be universally distributed across the three domains/superkingdoms of life. Since its initial characterization, this family of proteins has been tantalizingly linked to a wide range of biochemical functions. Tapping the enormous wealth of genome information that has accumulated since the initial characterization of these proteins, we perform a detailed computational analysis of the family, identifying multiple conserved domains. Domains identified include an enzymatic domain related to the formamidopyrimidine (Fpg), MutM, and Nei/EndoVIII family of DNA glycosylases, a novel, predicted RNA-binding domain, and a domain potentially mediating protein-protein interactions. Through this characterization, we predict that the DNA glycosylase-like domain catalytically operates on double-stranded RNA, as part of a hitherto unknown base modification mechanism that probably targets rRNAs. At least in archaea, and possibly eukaryotes, this pathway might additionally include the AMMECR1 family of proteins. The predicted RNA-binding domain associated with this family is also observed in distinct architectural contexts in other proteins across phylogenetically diverse prokaryotes. Here it is predicted to play a key role in a new pathway for tRNA 4-thiouridylation along with TusA-like sulfur transfer proteins.
机译:一个蛋白质家族包括哺乳动物NEMF,果蝇(Drosophila caliban),酵母Tae2和细菌类FpbA样蛋白,是在十年前首次定义的,发现它们普遍分布在生命的三个域/超级王国中。自其最初的表征以来,该蛋白家族已与多种生化功能紧密相连。自从这些蛋白质的最初表征以来,我们积累了巨大的基因组信息,我们对该科进行了详细的计算分析,确定了多个保守域。鉴定的域包括与DNA糖基化酶的甲酰嘧啶(Fpg),MutM和Nei / EndoVIII家族相关的酶促域,新颖的预测RNA结合域以及可能介导蛋白质-蛋白质相互作用的域。通过此表征,我们预测DNA糖基化酶样结构域在双链RNA上催化运行,这是迄今为止未知的可能靶向rRNA的碱基修饰机制的一部分。至少在古细菌,甚至可能是真核生物中,该途径可能还包括AMMECR1蛋白家族。在整个系统发育多样的原核生物的其他蛋白质中,也可以在不同的结构背景下观察到与此家族相关的预测的RNA结合结构域。在这里,预计它将与tusA样硫转移蛋白一起在tRNA 4-硫尿酰化的新途径中发挥关键作用。

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