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Hydrodynamic Interaction Enhances Colonization of Sinking Nutrient Sources by Motile Microorganisms

机译:流体动力相互作用增强了运动型微生物对下沉营养源的定殖

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In this study, we document hydrodynamics-mediated trapping of microorganisms around a moving spherical nutrient source such as a settling marine snow aggregate. There exists a range of size and excess density of the nutrient source, and motility and morphology of the microorganism under which hydrodynamic interactions enable the passive capture of approaching microorganisms onto a moving nutrient source. We simulate trajectories of chemotactic and non-chemotactic bacteria encountering a sinking marine snow particle effusing soluble nutrients. We calculate the average nutrient concentration to which the bacteria are exposed, under regimes of strong and weak hydrodynamic trapping. We find that hydrodynamic trapping can significantly amplify (by ≈40%) the nutrient exposure of bacteria, both chemotactic and non-chemotactic. The subtle interactions between hydrodynamic and chemotactic effects reveal non-trivial variations in this “hydrodynamic amplification,” as a function of relevant biophysical parameters. Our study provides a consistent description of how microorganism motility, fluid flow and nutrient distribution affect foraging by marine microbes, and the formation of biofilms on spherical nutrient sources under the influence of fluid flow.
机译:在这项研究中,我们记录了流体动力学介导的围绕球形营养物源(如沉降的海洋积雪)周围微生物的捕集。营养源的大小和过剩密度以及微生物的运动性和形态存在一定范围,在此范围内,水动力相互作用可以使接近的微生物被动捕获到移动的营养源上。我们模拟趋化和非趋化细菌遇到下沉的海洋积雪颗粒溶解可溶性养分的轨迹。我们根据强和弱流体动力捕集的方式来计算细菌所接触的平均养分浓度。我们发现流体动力捕集可以显着放大(约40%)细菌的营养成分,包括趋化性和非趋化性。流体动力和趋化作用之间的微妙相互作用揭示了这种“流体动力放大”的重要变化,这是相关生物物理参数的函数。我们的研究提供了一致的描述,说明微生物的运动性,流体流动和养分分布如何影响海洋微生物的觅食,以及在流体流动的影响下球形营养源上生物膜的形成。

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