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Water masses influence the variation of microbial communities in the Yangtze River Estuary and its adjacent waters

水团 河口 陆源沉积物 海水 海洋学 地表水 长江 底水 环境科学 生态学 地质学 中国 沉积物 古生物学 生物 地理 环境工程 考古
作者
Wen-Dong Xian,Jinhui Chen,Zheng Zheng,Junjie Ding,Yinli Xi,Yiying Zhang,Wu Qu,Chunyu Tang,Changlin Li,Xuezhu Liu,Wei Li,Jianxin Wang
出处
期刊:Frontiers in Microbiology [Frontiers Media SA]
卷期号:15 被引量:1
标识
DOI:10.3389/fmicb.2024.1367062
摘要

The Yangtze River estuary (YRE) are strongly influenced by the Kuroshio and terrigenous input from rivers, leading to the formation of distinct water masses, however, there remains a limited understanding of the full extent of this influence. Here the variation of water masses and bacterial communities of 58 seawater samples from the YRE and its adjacent waters were investigated. Our findings suggested that there were 5 water masses in the studied area: Black stream (BS), coastal water in the East China Sea (CW), nearshore mixed water (NM), mixed water in the middle and deep layers of the East China Sea (MM), and deep water blocks in the middle of the East China Sea (DM). The CW mass harbors the highest alpha diversity across all layers, whereas the NM mass exhibits higher diversity in the surface layer but lower in the middle layers. Proteobacteria was the most abundant taxa in all water masses, apart from that, in the surface layer masses, Cyanobacterium , Bacteroidota , and Actinobacteriota were the highest proportion in CW, while Bacteroidota and Actinobacteriota were the highest proportion in NM and BS; in the middle layer, Bacteroidota and Actinobacteriota were dominant phylum in CW and BS masses, but Cyanobacterium was main phylum in NM mass; in the bottom layer, Bacteroidota and Actinobacteriota were the dominant phylum in CW, while Marininimicrobia was the dominated phylum in DM and MM masses. Network analysis suggests water masses have obvious influence on community topological characteristics, moreover, community assembly across masses also differ greatly. Taken together, these results emphasized the significant impact of water masses on the bacterial composition, topological characteristics and assembly process, which may provide a theoretical foundation for predicting alterations in microbial communities within estuarine ecosystems under the influence of water masses.
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