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深入了解 NAT 基因家族在微生物次生代谢中的基因组和功能分化。

Insights into the genomic and functional divergence of NAT gene family to serve microbial secondary metabolism.

机构信息

Department of Molecular Biology and Genetics, Democritus University of Thrace, 68100, Alexandroupolis, Greece.

出版信息

Sci Rep. 2024 Jun 28;14(1):14905. doi: 10.1038/s41598-024-65342-4.

Abstract

Microbial NAT enzymes, which employ acyl-CoA to acylate aromatic amines and hydrazines, have been well-studied for their role in xenobiotic metabolism. Some homologues have also been linked to secondary metabolism, but this function of NAT enzymes is not as well-known. For this comparative study, we surveyed sequenced microbial genomes to update the list of formally annotated NAT genes, adding over 4000 new sequences (mainly bacterial, but also archaeal, fungal and protist) and portraying a broad but not universal distribution of NATs in the microbiocosmos. Localization of NAT sequences within microbial gene clusters was not a rare finding, and this association was evident across all main types of biosynthetic gene clusters (BGCs) implicated in secondary metabolism. Interrogation of the MIBiG database for experimentally characterized clusters with NAT genes further supports that secondary metabolism must be a major function for microbial NAT enzymes and should not be overlooked by researchers in the field. We also show that NAT sequences can be associated with bacterial plasmids potentially involved in horizontal gene transfer. Combined, our computational predictions and MIBiG literature findings reveal the extraordinary functional diversification of microbial NAT genes, prompting further research into their role in predicted BGCs with as yet uncharacterized function.

摘要

微生物 NAT 酶利用酰基辅酶 A 酰化芳香胺和肼,因其在异生物质代谢中的作用而得到了很好的研究。一些同源物也与次生代谢有关,但 NAT 酶的这种功能并不广为人知。在这项比较研究中,我们调查了测序的微生物基因组,以更新正式注释的 NAT 基因列表,增加了 4000 多个新序列(主要是细菌,但也有古菌、真菌和原生动物),并描绘了 NAT 在微生物群落中的广泛但非普遍分布。NAT 序列在微生物基因簇内的定位并不罕见,这种关联在所有主要类型的与次生代谢有关的生物合成基因簇(BGCs)中都很明显。对 MIBiG 数据库中具有 NAT 基因的实验表征簇的查询进一步支持了微生物 NAT 酶的次生代谢必须是主要功能,并且不应该被该领域的研究人员忽视。我们还表明,NAT 序列可以与可能参与水平基因转移的细菌质粒相关联。总之,我们的计算预测和 MIBiG 文献发现揭示了微生物 NAT 基因的非凡功能多样化,促使人们进一步研究其在预测 BGCs 中的作用,这些 BGCs 的功能尚未得到表征。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4771/11213898/2051f55e09c8/41598_2024_65342_Fig1_HTML.jpg

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