寻找新的D-氨基酸氧化酶的生物信息学结构方法。

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
D L Atroshenko, D I Golovina, E P Sergeev, M D Shelomov, A G Elcheninov, I V Kublanov, T A Chubar, A A Pometun, S S Savin, V I Tishkov
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引用次数: 0

摘要

D-氨基酸氧化酶(DAAO,EC 1.2.1.2)在原核生物以及低等(酵母和真菌)和高等真核生物(哺乳动物)的功能中起着重要作用。DAAO基因尚未在古生菌基因组中发现。D-氨基酸氧化酶越来越多地应用于各个领域,这需要开发具有特定性质的酶的新变体。然而,即使在一个相关的群体(细菌、酵母和真菌、哺乳动物)中,DAAO在氨基酸序列之间也显示出非常低的同源性。特别是,在细菌DAAO的情况下可以清楚地观察到这一事实。DAAO一级结构的高度可变性严重限制了在已知基因组中寻找新酶。因此,许多(如果不是大多数的话)DAAO基因要么没有注释,要么注释错误。我们提出了一种方法,将生物信息学方法与一般的3D结构和活性中心结构分析相结合,以确认所发现的基因编码D-氨基酸氧化酶,并预测其底物特异性的可能类型。使用同源性搜索,我们获得了一组候选序列,对所选酶的三级结构进行了建模,并将其与已知DAAO的实验和模型结构进行了比较。显示了所提出的DAAOs和甘氨酸氧化酶鉴别方法的有效性。使用这种方法,在6株极端嗜盐细菌的基因组中发现了新的DAAO基因,并在世界上首次在嗜盐古菌的基因组中鉴定出一个基因。初步实验用D-Leu和D-Phe证实了来自Natronosporgium hydrolyticum ACPA39的DAAO的预测特异性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Bioinformatics-Structural Approach to the Search for New D-Amino Acid Oxidases.

Bioinformatics-Structural Approach to the Search for New D-Amino Acid Oxidases.

Bioinformatics-Structural Approach to the Search for New D-Amino Acid Oxidases.

Bioinformatics-Structural Approach to the Search for New D-Amino Acid Oxidases.

D-amino acid oxidase (DAAO, EC 1.2.1.2) plays an important role in the functioning of prokaryotes as well as of lower (yeast and fungi) and higher eukaryotes (mammals). DAAO genes have not yet been found in archaean genomes. D-amino acid oxidase is increasingly used in various fields, which requires the development of new variants of the enzyme with specific properties. However, even within one related group (bacteria, yeasts and fungi, mammals), DAAOs show very low homology between amino acid sequences. In particular, this fact is clearly observed in the case of DAAO from bacteria. The high variability in the primary structures of DAAO severely limits the search for new enzymes in known genomes. As a result, many (if not most) DAAO genes remain either unannotated or incorrectly annotated. We propose an approach that uses bioinformatic methods in combination with general 3D structure and active center structure analysis to confirm that the gene found encodes D-amino acid oxidase and to predict the possible type of its substrate specificity. Using a homology search, we obtained a set of candidate sequences, modelled the tertiary structure of the selected enzymes, and compared them with experimental and model structures of known DAAOs. The effectiveness of the proposed approach for discrimination of DAAOs and glycine oxidases is shown. Using this approach, new DAAO genes were found in the genomes of six strains of extremophilic bacteria, and for the first time in the world, one gene was identified in the genome of halophilic archaea. Preliminary experiments confirmed the predicted specificity of DAAO from Natronosporangium hydrolyticum ACPA39 with D-Leu and D-Phe.

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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
自引率
2.10%
发文量
464
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