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Crystal structures of isoorotate decarboxylases reveal a novel catalytic mechanism of 5-carboxyl-uracil decarboxylation and shed light on the search for DNA decarboxylase FREE

机译:异旋酸脱羧酶的晶体结构揭示了5-羧基-尿嘧啶脱羧的新催化机制,为寻找DNA脱羧酶提供了新的思路

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DNA methylation and demethylation regulate many crucial biological processes in mammals and are linked to many diseases. Active DNA demethylation is believed to be catalyzed by TET proteins and a putative DNA decarboxylase that may share some similarities in sequence, structure and catalytic mechanism with isoorotate decarboxylase (IDCase) that catalyzes decarboxylation of 5caU to U in fungi. We report here the structures of wild-type and mutant IDCases from Cordyceps militaris and Metarhizium anisopliae in apo form or in complexes with 5caU, U, and an inhibitor 5-nitro-uracil. IDCases adopt a typical (β/α)8 barrel fold of the amidohydrolase superfamily and function as dimers. A Zn2+ is bound at the active site and coordinated by four strictly conserved residues, one Asp and three His. The substrate is recognized by several strictly conserved residues. The functional roles of the key residues at the active site are validated by mutagenesis and biochemical studies. Based on the structural and biochemical data, we present for the first time a novel catalytic mechanism of decarboxylation for IDCases, which might also apply to other members of the amidohydrolase superfamily. In addition, our biochemical data show that IDCases can catalyze decarboxylation of 5caC to C albeit with weak activity, which is the first in vitro evidence for direct decarboxylation of 5caC to C by an enzyme. These findings are valuable in the identification of potential DNA decarboxylase in mammals.
机译:DNA甲基化和脱甲基化调节哺乳动物中许多重要的生物学过程,并与许多疾病有关。活性DNA脱甲基被认为是由TET蛋白和推定的DNA脱羧酶催化的,该脱羧酶可能在序列,结构和催化机理上与异旋酸脱羧酶(IDCase)共享,后者催化真菌中5caU脱羧为U。我们在这里报告了从Cord虫草和拟南芥的apo形式或与5caU,U和抑制剂5-硝基尿嘧啶的复合物的野生型和突变IDCases的结构。 IDCases采用典型的酰胺水解酶超家族的(β/α)8桶折叠,并用作二聚体。 Zn2 +结合在活性位点上,并由四个严格保守的残基(一个Asp和三个His)配位。底物被几个严格保守的残基识别。通过诱变和生化研究验证了活性位点关键残基的功能作用。基于结构和生化数据,我们首次提出了IDCases脱羧的新型催化机制,该机制也可能适用于酰胺水解酶超家族的其他成员。此外,我们的生化数据表明,IDCases可以催化5caC脱羧为C,尽管活性较弱,这是酶将5caC脱羧为C的第一个体外证据。这些发现对于鉴定哺乳动物中潜在的DNA脱羧酶是有价值的。

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