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水动力对浅海边缘海域再悬浮沉积物微生物群落组成和有机碳组成的影响。

Influences of hydrodynamics on microbial community assembly and organic carbon composition of resuspended sediments in shallow marginal seas.

机构信息

Frontiers Science Center for Deep Ocean Multispheres and Earth System, and Key Laboratory of Marine Chemistry Theory and Technology, Ministry of Education, Ocean University of China, Qingdao, China.

College of Marine Geosciences, Ocean University of China, Qingdao, China.

出版信息

Water Res. 2024 Jan 1;248:120882. doi: 10.1016/j.watres.2023.120882. Epub 2023 Nov 15.

Abstract

Hydrodynamic processes play a crucial role in driving the transmission of sediments, likely harboring diverse microbes and heterogeneous organic carbon (OC) in the ocean. Here we conducted continuous micro-erosion experiments on surface sediments retrieved from shallow marginal seas, and analyzed the microbial community structures, OC content, and isotope compositions (δC and ΔC) of resuspended sediments to investigate the effects of hydrodynamics on microbial assembly and OC composition in marginal seas. Our results showed that gene abundance and major microbial compositions in resuspended sediments changed with varying benthic shear stresses, which evolved towards diversification after continuous hydrodynamic erosion. Aerobic bacteria were more likely to be eroded out from sediments under lower shear stresses compared with anaerobic bacteria. Our study provides evidence that hydrodynamic disturbances shape the assembly of microbial communities with different metabolic functions, especially for bacteria, which may spatially influence the microbial-mediated biogeochemical transformation in marginal seas. Isotopic results revealed that more terrestrial OC was resuspended under initial erosion, while more marine OC was eroded out with increasing shear stresses, suggesting that hydrodynamics may control the redistribution of different sourced OC and contribute to the dispersion and degradation of terrestrial OC during transport process. Our findings further suggest that the nature of resuspended OC may influence the assembly of sediment-attached microbes due to their metabolic preference for carbon sources, as evidenced by correlations between OC compositions and microbial diversity and abundance. We thus suggest that hydrodynamic disturbance is an extrinsic physical driver of OC redistribution and microbial reassembly, whereas OC may be an intrinsic factor influencing microbial colonization, helping to interpret the spatial heterogeneity of microbes and OC compositions observed in marginal sea sediments. Our study underscores the significant roles of hydrodynamic-driven sediment resuspension in shaping diverse microbial communities and redistributing OC in aquatic systems, and highlights the importance of this process in biogeochemical cycles and ecological environment evolution in shallow marginal sea systems.

摘要

水动力过程在驱动沉积物输运方面起着至关重要的作用,这些沉积物中可能蕴藏着海洋中多种多样的微生物和异质有机碳(OC)。在这里,我们对从浅海边缘海采集的表层沉积物进行了连续的微侵蚀实验,并分析了再悬浮沉积物中的微生物群落结构、OC 含量和同位素组成(δC 和 ΔC),以研究水动力对边缘海微生物组装和 OC 组成的影响。我们的研究结果表明,再悬浮沉积物中的基因丰度和主要微生物组成随底栖切应力的变化而变化,在连续水动力侵蚀后向多样化演变。与厌氧菌相比,好氧菌更容易在较低的切应力下从沉积物中被侵蚀出来。本研究为水动力扰动塑造具有不同代谢功能的微生物群落组装提供了证据,特别是对细菌的影响,这可能会在空间上影响边缘海中微生物介导的生物地球化学转化。同位素结果表明,在初始侵蚀过程中,更多的陆源 OC 被再悬浮,而随着切应力的增加,更多的海洋 OC 被侵蚀出来,这表明水动力可能控制不同来源 OC 的再分布,并在运输过程中促进陆源 OC 的分散和降解。我们的研究结果还表明,由于微生物对碳源的代谢偏好,再悬浮 OC 的性质可能会影响附着在沉积物上的微生物的组装,这可以从 OC 组成与微生物多样性和丰度之间的相关性中得到证明。因此,我们认为水动力扰动是 OC 再分配和微生物再组装的外在物理驱动因素,而 OC 可能是影响微生物定殖的内在因素,有助于解释在边缘海沉积物中观察到的微生物和 OC 组成的空间异质性。我们的研究强调了水动力驱动的沉积物再悬浮在塑造多样化的微生物群落和在水生系统中重新分配 OC 方面的重要作用,并突出了这一过程在浅海边缘海系统的生物地球化学循环和生态环境演化中的重要性。

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