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细菌聚集放大了海洋颗粒周围富营养羽流的重塑:一种混合数据驱动模型。

Bacterial clustering amplifies the reshaping of eutrophic plumes around marine particles: A hybrid data-driven model.

作者信息

Kapellos George E, Eberl Hermann J, Kalogerakis Nicolas, Doyle Patrick S, Paraskeva Christakis A

机构信息

Department of Chemical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts, United States of America.

Department of Chemical Engineering, University of Patras, Rion Achaia, Greece.

出版信息

PLoS Comput Biol. 2024 Dec 11;20(12):e1012660. doi: 10.1371/journal.pcbi.1012660. eCollection 2024 Dec.

Abstract

Multifaceted interactions between marine bacteria and particulate matter exert a major control over the biogeochemical cycles in the oceans. At the microbial scale, free-living bacteria benefit from encountering and harnessing the plumes around nutrient-releasing particles, like phyto-plankton and organic aggregates. However, our understanding of the bacterial potential to reshape these eutrophic microhabitats remains poor, in part because of the traditional focus on fast-moving particles that generate ephemeral plumes with lifetime shorter than the uptake timescale. Here we develop a novel hybrid model to assess the impacts of nutrient uptake by clustered free-living bacteria on the nutrient field around slow-moving particles. We integrate a physics-based nutrient transport model with data-derived bacterial distributions at the single-particle level. We inferred the functional form of the bacterial distribution and extracted parameters from published datasets of in vitro and in silico microscale experiments. Based on available data, we find that exponential radial distribution functions properly represent bacterial microzones, but also capture the trend and variation for the exposure of bacteria to nutrients around sinking particles. Our computational analysis provides fundamental insight into the conditions under which free-living bacteria may significantly reshape plumes around marine aggregates in terms of the particle size and sinking velocity, the nutrient diffusivity, and the bacterial trophic lifestyle (oligotrophs < mesotrophs < copiotrophs). A high potential is predicted for chemotactic copiotrophs like Vibrio sp. that achieve fast uptake and strong clustering. This microscale phenomenon can be critical for the microbiome and nutrient cycling in marine ecosystems, especially during particulate blooms.

摘要

海洋细菌与颗粒物之间的多方面相互作用对海洋生物地球化学循环起着主要控制作用。在微生物尺度上,自由生活的细菌受益于遇到并利用营养释放颗粒(如浮游植物和有机聚集体)周围的羽状流。然而,我们对细菌重塑这些富营养微生境潜力的理解仍然不足,部分原因是传统上关注的是快速移动的颗粒,这些颗粒产生的短暂羽状流的寿命短于吸收时间尺度。在这里,我们开发了一种新型混合模型,以评估聚集的自由生活细菌对缓慢移动颗粒周围营养场的营养吸收影响。我们将基于物理的营养物质传输模型与单颗粒水平上数据驱动的细菌分布相结合。我们从已发表的体外和计算机模拟微观实验数据集中推断出细菌分布的函数形式并提取参数。基于现有数据,我们发现指数径向分布函数能够恰当地表示细菌微区,同时也捕捉到细菌在下沉颗粒周围接触营养物质的趋势和变化。我们的计算分析提供了关于自由生活细菌在何种条件下可能根据颗粒大小、下沉速度、营养物质扩散率以及细菌营养生活方式(贫营养菌<中营养菌<富营养菌)显著重塑海洋聚集体周围羽状流的基本见解。预测像弧菌属这样具有趋化性的富营养菌具有很高的潜力,它们能够实现快速吸收和强烈聚集。这种微观现象对于海洋生态系统中的微生物群落和营养物质循环可能至关重要,尤其是在颗粒爆发期间。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/76f5/11666058/d429fc7465bf/pcbi.1012660.g001.jpg

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