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揭示废水处理中氧化亚氮还原的遗传潜力:宏基因组组装基因组的启示。

Unraveling the genetic potential of nitrous oxide reduction in wastewater treatment: insights from metagenome-assembled genomes.

机构信息

Department of Chemistry and Bioscience, Aalborg University, Aalborg, Denmark.

出版信息

Appl Environ Microbiol. 2024 Sep 18;90(9):e0217723. doi: 10.1128/aem.02177-23. Epub 2024 Aug 13.

Abstract

UNLABELLED

This study explores the genetic landscape of nitrous oxide (NO) reduction in wastewater treatment plants (WWTPs) by profiling 1,083 high-quality metagenome-assembled genomes (HQ MAGs) from 23 Danish full-scale WWTPs. The focus is on the distribution and diversity of nitrous oxide reductase () genes and their association with other nitrogen metabolism pathways. A custom pipeline for clade-specific gene identification with higher sensitivity revealed 503 sequences in 489 of these HQ MAGs, outperforming existing Kyoto Encyclopedia of Genes and Genomes (KEGG) module-based methods. Notably, 48.7% of the total 1,083 HQ MAGs harbored genes, with clade II being predominant, accounting for 93.7% of these genes. Taxonomic profiling highlighted the prevalence of -containing taxa within and exhibited unexpected affiliations with both the and secretory pathways, and all were found to contain the accessory gene, underscoring the importance of investigating the secretory pathway. The majority of non-denitrifying NO reducers were found within and . Additionally, HQ MAGs with genes for dissimilatory nitrate reduction to ammonium and assimilatory nitrate reduction frequently co-occurred with the gene. Traditional primers targeting often focus on short-length amplicons. Therefore, we introduced custom-designed primer sets targeting near-full-length sequences. These new primers demonstrate efficacy in capturing diverse and well-characterized sequences, providing a valuable tool with higher resolution for future research. In conclusion, this comprehensive analysis enhances our understanding of NO-reducing organisms in WWTPs, highlighting their potential as NO sinks with the potential for optimizing wastewater treatment processes and mitigating greenhouse gas emissions.

IMPORTANCE

This study provides critical insights into the genetic diversity of nitrous oxide reductase (nosZ) genes and the microorganisms harboring them in wastewater treatment plants (WWTPs) by exploring 1,083 high-quality metagenome-assembled genomes (MAGs) from 23 Danish full-scale WWTPs. Despite the pivotal role of nosZ-containing organisms, their diversity remains largely unexplored in WWTPs. Our custom pipeline for detecting nosZ provides near-full-length genes with detailed information on secretory pathways and accessory nos genes. Using these genes as templates, we developed taxonomically diverse clade-specific primers that generate nosZ amplicons for phylogenetic annotation and gene-to-MAG linkage. This approach improves detection and expands the discovery of novel sequences, highlighting the prevalence of non-denitrifying NO reducers and their potential as NO sinks. These findings have the potential to optimize nitrogen removal processes and mitigate greenhouse gas emissions from WWTPs by fully harnessing the capabilities of the microbial communities.

摘要

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本研究通过分析 23 个丹麦全规模污水处理厂的 1083 个高质量宏基因组组装基因组(HQ MAG),探索了污水处理厂(WWTP)中一氧化二氮(NO)还原的遗传景观。研究重点是一氧化二氮还原酶(nosZ)基因的分布和多样性及其与其他氮代谢途径的关联。一种具有更高灵敏度的用于特定进化枝的基因鉴定的定制管道揭示了这些 HQ MAG 中的 489 个中的 503 个序列,优于现有的京都基因与基因组百科全书(KEGG)模块为基础的方法。值得注意的是,在总共 1083 个 HQ MAG 中,有 48.7%的 HQ MAG 含有 nosZ 基因,其中进化枝 II 占主导地位,占这些基因的 93.7%。分类学分析突出了 - 含有类群在 nosZ 中的普遍性,并且表现出与 和 分泌途径的意外关联,并且所有这些都被发现含有辅助的 nosZ 基因,强调了研究分泌途径的重要性。大多数非反硝化的 NO 还原剂都存在于 和 中。此外,具有异化硝酸盐还原为铵和同化硝酸盐还原基因的 HQ MAG 经常与基因共现。针对 nosZ 的传统引物通常集中在短长度的扩增子上。因此,我们引入了针对近全长 nosZ 序列的定制设计引物组。这些新的引物在捕获多样化和特征良好的序列方面表现出有效性,为未来的研究提供了具有更高分辨率的有价值的工具。总之,这项全面的分析增强了我们对 WWTP 中一氧化二氮还原酶(nosZ)的遗传多样性的理解,强调了它们作为一氧化二氮汇的潜力,有可能优化废水处理过程并减少温室气体排放。

重要性

本研究通过探索来自 23 个丹麦全规模污水处理厂的 1083 个高质量宏基因组组装基因组(MAG),对污水处理厂(WWTP)中一氧化二氮还原酶(nosZ)基因及其携带它们的微生物的遗传多样性进行了重要研究。尽管含有 nosZ 的生物体具有重要作用,但它们在 WWTP 中的多样性在很大程度上仍未得到探索。我们用于检测 nosZ 的定制管道提供了带有详细分泌途径和辅助 nosZ 基因信息的近全长基因。使用这些基因作为模板,我们开发了分类多样化的特定进化枝的引物,可生成用于系统发育注释和基因到 MAG 链接的 nosZ 扩增子。这种方法提高了检测能力,并扩大了新序列的发现,突出了非反硝化 NO 还原剂的普遍性及其作为一氧化二氮汇的潜力。这些发现有可能通过充分利用微生物群落的能力来优化氮去除过程并减少 WWTP 中的温室气体排放。

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