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综合多组学分析揭示了东海微生物群落对波动低氧的恢复力。

Integrated multi-omics analyses reveal microbial community resilience to fluctuating low oxygen in the East China sea.

机构信息

State Key Laboratory of Marine Environmental Science, Fujian Key Laboratory of Marine Carbon Sequestration, College of Ocean and Earth Sciences, Xiamen University, China.

State Key Laboratory of Marine Environmental Science, Fujian Key Laboratory of Marine Carbon Sequestration, College of Ocean and Earth Sciences, Xiamen University, China.

出版信息

Environ Res. 2024 Nov 15;261:119764. doi: 10.1016/j.envres.2024.119764. Epub 2024 Aug 8.

Abstract

Climate change and eutrophication are accelerating ocean deoxygenation, leading to a global decline in oxygen levels. The East China Sea, frequently experiencing deoxygenation events, harbors diverse microbial communities. However, the response of these communities to the changing deoxygenation dynamics remains poorly understood. Here, we explored the composition and function of microbial communities inhabiting seawaters of the Changjiang Estuary and offshore areas. Our findings suggested that neutral processes significantly influenced the assembly of these communities. The overall bacterial composition demonstrated remarkable high stability across the oxygen gradient. Salinity exhibited a significantly stronger correlation with bacterial community structure than dissolved oxygen. Both metagenomics and metaproteomics revealed that all of the samples exhibited similar functional community structures. Heterotrophic metabolism dominated these sites, as evidenced by a diverse array of transporters and metabolic enzymes for organic matter uptake and utilization, which constituted a significant portion of the expressed proteins. O was the primary electron acceptor in bacteria even under hypoxic conditions, evidenced by expression of low- and high-affinity cytochrome oxidases. Proteins associated with anaerobic processes, such as dissimilatory sulfite reductases, were virtually undetectable. Untargeted liquid chromatography with tandem mass spectrometry analysis of seawater samples revealed a diverse range of dissolved organic matter (DOM) components in amino acids, lipids, organic acids, peptides, and carbohydrates, potentially fueling dominant taxa growth. Despite fluctuations in the abundance of specific genera, the remarkable similarity in community structure, function, and DOM suggests that this ecosystem possesses robust adaptive mechanisms that buffer against abrupt changes, even below the well-defined hypoxic threshold in marine ecosystem.

摘要

气候变化和富营养化正在加速海洋脱氧作用,导致全球氧气水平下降。东海经常发生脱氧事件,拥有多样化的微生物群落。然而,这些群落对不断变化的脱氧动态的反应仍知之甚少。在这里,我们研究了栖息在长江口和近海海域海水中的微生物群落的组成和功能。我们的研究结果表明,中性过程对这些群落的组装有重要影响。整个细菌组成在氧气梯度上表现出显著的高稳定性。盐度与细菌群落结构的相关性明显强于溶解氧。宏基因组学和宏蛋白质组学都表明,所有样本都表现出相似的功能群落结构。异养代谢在这些地方占主导地位,这一点可以从大量的有机物摄取和利用的转运蛋白和代谢酶得到证明,这些酶构成了表达蛋白的重要部分。即使在缺氧条件下,O 也是细菌的主要电子受体,这可以通过低亲和性和高亲和性细胞色素氧化酶的表达来证明。与厌氧过程相关的蛋白质,如异化亚硫酸盐还原酶,实际上是无法检测到的。对海水样本的非靶向液相色谱串联质谱分析揭示了氨基酸、脂类、有机酸、肽和碳水化合物中存在多种溶解有机物质 (DOM) 成分,这些物质可能为优势类群的生长提供燃料。尽管特定属的丰度存在波动,但群落结构、功能和 DOM 的显著相似性表明,即使在海洋生态系统中明确定义的缺氧阈值以下,该生态系统也具有强大的适应机制,可以缓冲突然变化。

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