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首页> 外文期刊>Biochimica et Biophysica Acta. General Subjects >Large-scale examination of functional and sequence diversity of 2-oxoglutarate/Fe(II)-dependent oxygenases in Metazoa
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Large-scale examination of functional and sequence diversity of 2-oxoglutarate/Fe(II)-dependent oxygenases in Metazoa

机译:在Metazoa中的2-氧代勒巴酸盐/ Fe(II)依赖性氧全的功能和序列多样性的大规模检查

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Background: The 2-oxoglutarate/Fe(II)-dependent oxygenase (2OG oxygenase) superfamily in Metazoa is responsible for protein modification, nucleic acid repair and/or modification, and fatty acid metabolism. Methods: Phylogenetic analysis, protein sequence similarity network (SSN) and other bioinformatics tools were used to analyze the evolutionary relationship and make functional inferences of Metazoa 2OG oxygenases. Results: Sixty-four 2OG oxygenases have been previously found in Homo sapiens; they catalyze two reactions: hydroxylation and demethylation. Phylogenetic analyses indicated that enzymes with similar domain architecture are always clustered together, and the redox function can be performed by the 2OG oxygenase domain or Jumonji C (JmjC) domain, where the JmjC domain is always fused to other functional domains. We used the SSN to make functional inferences and to conduct distribution analysis of Metazoa 2OG oxygenases.> 11,000 putative 2OG oxygenases across Metazoa could be assigned potential functions based on the SSN. The multiple sequence alignments showed that the residues binding iron are most highly conserved in both the 2OG oxygenase domain and JmjC domain. In contrast, the residues binding oxoglutarate are quite different in the two domains: the 2OG oxygenase domain tends to have an Arg/Lys at the C terminus, whereas the JmjC domain, an Asn/Lys residue in the middle region. Conclusions: The results indicated that gene duplication and vertical gene transfer have played important roles in 2OG oxygenase evolution in Metazoa and clarified the difference between the 2OG oxygenase domain and JmjC domain. General significance: These findings expand the understanding of the diversity, evolution, and functions of 2OG oxygenases.
机译:背景:2-氧代戊酸酯/ Fe(II) - 依赖氧酶(2g氧酶)超家族在Metazoa中负责蛋白质修饰,核酸修复和/或修饰以及脂肪酸代谢。方法:系统发育分析,蛋白质序列相似性网络(SSN)和其他生物信息学工具用于分析进化关系,使Metazoa 2g氧化酶的功能推论。结果:64个2g氧气酶以先前发现在同性全质中;它们催化两种反应:羟基化和去甲基化。系统发育分析表明,具有类似域架构的酶始终聚集在一起,并且氧化还原功能可以由2G氧气域域或Jumonji C(JMJC)域来执行,其中JMJC域总是融合到其他功能域中。我们使用SSN进行功能推论并进行Metazoa 2g氧化酶的分配分析。>在MetazoA的11,000推定的2g氧气酶基于SSN的潜在功能。多个序列对准表明,在2G氧酶结构域和JMJC结构域中,残留物结合铁是最高度保守的。相反,结合氧化氟化丁酸的残留物在两个结构域中是完全不同的:2G氧酶结构域倾向于在C末端具有ARG / Lys,而JMJC结构域,中间区域中的ASN / Lys残基。结论:结果表明,基因重复和垂直基因转移在MetazoA的2G氧酶演化中发挥了重要作用,并阐明了2G氧酶结构域和JMJC结构域之间的差异。一般意义:这些发现扩大了对氧气酶的多样性,进化和功能的理解。

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