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首页> 外文期刊>Environmental microbiology >Bacterial community shift is induced by dynamic environmental parameters in a changing coastal ecosystem (northern Adriatic, northeastern Mediterranean Sea) - a 2-year time-series study
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Bacterial community shift is induced by dynamic environmental parameters in a changing coastal ecosystem (northern Adriatic, northeastern Mediterranean Sea) - a 2-year time-series study

机译:细菌群落的变化是由不断变化的沿海生态系统(亚得里亚海北部,地中海东北部)中的动态环境参数引起的-一项为期2年的时间序列研究

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The potential link between the microbial dynamics and the environmental parameters was investigated in a semi-enclosed and highly dynamic coastal system (Gulf of Trieste, northern Adriatic Sea, NE Mediterranean Sea). Our comprehensive 2-year time-series study showed that despite the shallowness of this area, there was a significant difference between the surface and the bottom bacterial community structure. The bottom bacterial community was more diverse than the surface one and influenced by sediment re-suspension. The surface seawater temperature had a profound effect on bacterial productivity, while the bacterial community structure was more affected by freshwater-borne nutrients and phytoplankton blooms. Phytoplankton blooms caused an increase of Gammaproteobacteria (Alteromonadaceae, SAR86 and Vibrionaceae) and shift in dominance from SAR11 to Rhodobacteraceae taxon at the surface. Our results propose the importance of the water mass movements as drivers of freshwater-borne nutrients and of allochthonous microbial taxa. This study emphasizes the prediction power based on association networks analyses that are fed with long-term measurements of microbial and environmental parameters. These interaction maps offer valuable insights into the response of marine ecosystem to climate- and anthropogenic-driven stressors.
机译:在半封闭且高度动态的沿海系统(的里雅斯特湾,北部亚得里亚海,东北地中海)中,研究了微生物动力学与环境参数之间的潜在联系。我们全面的2年时间序列研究表明,尽管该区域较浅,但表面和底部细菌群落结构之间存在显着差异。底部细菌群落比表面细菌群落更多样化,并受沉积物再悬浮的影响。地表海水温度对细菌生产力有深远的影响,而细菌群落结构受淡水养分和浮游植物开花的影响更大。浮游植物的开花导致γ-变形杆菌(Alteromonadaceae,SAR86和Vibrionaceae)的增加,并且在表面上从SAR11到红细菌类群的优势发生转移。我们的研究结果表明水质运动作为淡水营养物质和异源微生物分类单元的驱动因素的重要性。这项研究强调了基于长期的微生物和环境参数测量结果的关联网络分析的预测能力。这些相互作用图为海洋生态系统对气候和人为压力源的响应提供了宝贵的见解。

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