Mechanisms underlying the interactions and adaptability of nitrogen removal microorganisms in freshwater sediments.

Dandan Zhang, Huang Yu, Xiaoli Yu, Yuchun Yang, Cheng Wang, Kun Wu, Mingyang Niu, Jianguo He, Zhili He, Qingyun Yan
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Abstract

Microorganisms in eutrophic water play a vital role in nitrogen (N) removal, which contributes significantly to the nutrient cycling and sustainability of eutrophic ecosystems. However, the mechanisms underlying the interactions and adaptation strategies of the N removal microorganisms in eutrophic ecosystems remain unclear. We thus analyzed field sediments collected from a eutrophic freshwater ecosystem, enriched the N removal microorganisms, examined their function and adaptability through amplicon, metagenome and metatranscriptome sequencing. We found that the N removal activities could be affected through potential competition and inhibition among microbial metabolic pathways. High-diversity microbial communities generally increased the abundance and expression of N removal functional genes. Further enrichment experiments showed that the enrichment of N removal microorganisms led to a development of simplified but more stable microbial communities, characterized by similar evolutionary patterns among N removal microorganisms, tighter interactions, and increased adaptability. Notably, the sustained provision of NH4+ and NO2- during the enrichment could potentially strengthen the interconnections among denitrification, anaerobic ammonium oxidation (anammox) and dissimilatory nitrate reduction to ammonium (DNRA) processes. Moreover, the identification of shared metabolic traits among denitrification, anammox and DNRA implies important cooperative associations and adaptability of N removal microorganisms. Our findings highlight the microbial interactions affect the adaptive strategies of key microbial taxa involved in N removal.

淡水沉积物中脱氮微生物相互作用和适应性的机制。
富营养化水体中的微生物在脱氮(N)方面发挥着重要作用,对富营养化生态系统的营养循环和可持续性做出了重大贡献。然而,富营养化生态系统中脱氮微生物的相互作用机制和适应策略仍不清楚。因此,我们分析了从富营养化淡水生态系统采集的野外沉积物,富集了脱氮微生物,并通过扩增子、元基因组和元转录组测序研究了它们的功能和适应性。我们发现,微生物代谢途径之间的潜在竞争和抑制可能会影响脱氮活性。高多样性微生物群落通常会增加脱氮功能基因的丰度和表达量。进一步的富集实验表明,脱氮微生物的富集导致了简化但更稳定的微生物群落的发展,其特点是脱氮微生物之间的进化模式相似、相互作用更紧密、适应性更强。值得注意的是,在富集过程中持续提供 NH4+ 和 NO2- 有可能加强反硝化、厌氧氨氧化(anammox)和硝酸盐异纤还原成氨(DNRA)过程之间的相互联系。此外,反硝化、厌氧氨氧化和异纤性硝酸盐还原成氨过程之间共享代谢特征的发现意味着脱氮微生物之间存在重要的合作关系和适应性。我们的研究结果突出表明,微生物之间的相互作用会影响参与脱氮的主要微生物类群的适应策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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