解读冰川河流中生物膜的生物合成景观。

IF 5 2区 生物学 Q1 MICROBIOLOGY
mSystems Pub Date : 2024-12-31 DOI:10.1128/msystems.01137-24
Aileen Ute Geers, Grégoire Michoud, Susheel Bhanu Busi, Hannes Peter, Tyler J Kohler, Leïla Ezzat, Tom J Battin
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引用次数: 0

摘要

冰川补给的河流是永久寒冷、超贫营养和物理不稳定的环境,但微生物生命在底栖生物膜群落中茁壮成长。在生物膜内,微生物依靠次级代谢物进行交流和竞争。然而,冰川补给流生物膜中次生代谢物的多样性和遗传潜力仍然知之甚少。在这项研究中,我们首次从世界主要山脉的冰川消失项目中取样的底栖冰川生物膜中大规模探索生物合成基因簇(bgc)。我们发现了显著的bgc多样性,在2868个原核生物宏基因组组装的基因组中鉴定了8000多个bgc,其中一些具有潜在的生态优势,如紫外线防护和群体感应。bgc与来自其他水生微生物群的bgc不同,其中40%以上是新的。冰川供给的河流BGCs与冰川微生物组BGCs的相似性最高。BGC组成具有地理分布规律,并与原核α多样性相关。我们还发现BGC多样性与底栖生物叶绿素a和原核生物多样性呈正相关,表明在更广泛的生物膜中存在更多的生物相互作用。我们的研究为迄今为止尚未充分探索的微生物生态系统提供了新的见解,由于气候变化导致冰川萎缩,微生物生态系统正在迅速变化。重要性:冰川河流的特点是低温、高浊度和高流量。它们在生物膜内拥有独特的微生物群,形成了食物网的基础,并对生物地球化学循环做出了重大贡献。我们对次生代谢物的研究,可能在这些复杂的生态系统中发挥重要作用,发现了与其他水生环境不同的独特遗传潜力。我们发现了合成几种次生代谢物的潜力,这些代谢物可能具有生态优势,如紫外线保护和群体感应。这种生物合成多样性与微生物群落的丰度和复杂性以及叶绿素a的浓度呈正相关。面对气候变化,我们的研究为消失的生态系统提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deciphering the biosynthetic landscape of biofilms in glacier-fed streams.

Glacier-fed streams are permanently cold, ultra-oligotrophic, and physically unstable environments, yet microbial life thrives in benthic biofilm communities. Within biofilms, microorganisms rely on secondary metabolites for communication and competition. However, the diversity and genetic potential of secondary metabolites in glacier-fed stream biofilms remain poorly understood. In this study, we present the first large-scale exploration of biosynthetic gene clusters (BGCs) from benthic glacier-fed stream biofilms sampled by the Vanishing Glaciers project from the world's major mountain ranges. We found a remarkable diversity of BGCs, with more than 8,000 of them identified within 2,868 prokaryotic metagenome-assembled genomes, some of them potentially conferring ecological advantages, such as UV protection and quorum sensing. The BGCs were distinct from those sourced from other aquatic microbiomes, with over 40% of them being novel. The glacier-fed stream BGCs exhibited the highest similarity to BGCs from glacier microbiomes. BGC composition displayed geographic patterns and correlated with prokaryotic alpha diversity. We also found that BGC diversity was positively associated with benthic chlorophyll a and prokaryotic diversity, indicative of more biotic interactions in more extensive biofilms. Our study provides new insights into a hitherto poorly explored microbial ecosystem, which is now changing at a rapid pace as glaciers are shrinking due to climate change.

Importance: Glacier-fed streams are characterized by low temperatures, high turbidity, and high flow. They host a unique microbiome within biofilms, which form the foundation of the food web and contribute significantly to biogeochemical cycles. Our investigation into secondary metabolites, which likely play an important role in these complex ecosystems, found a unique genetic potential distinct from other aquatic environments. We found the potential to synthesize several secondary metabolites, which may confer ecological advantages, such as UV protection and quorum sensing. This biosynthetic diversity was positively associated with the abundance and complexity of the microbial community, as well as concentrations of chlorophyll a. In the face of climate change, our study offers new insights into a vanishing ecosystem.

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来源期刊
mSystems
mSystems Biochemistry, Genetics and Molecular Biology-Biochemistry
CiteScore
10.50
自引率
3.10%
发文量
308
审稿时长
13 weeks
期刊介绍: mSystems™ will publish preeminent work that stems from applying technologies for high-throughput analyses to achieve insights into the metabolic and regulatory systems at the scale of both the single cell and microbial communities. The scope of mSystems™ encompasses all important biological and biochemical findings drawn from analyses of large data sets, as well as new computational approaches for deriving these insights. mSystems™ will welcome submissions from researchers who focus on the microbiome, genomics, metagenomics, transcriptomics, metabolomics, proteomics, glycomics, bioinformatics, and computational microbiology. mSystems™ will provide streamlined decisions, while carrying on ASM''s tradition of rigorous peer review.
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