Understanding the flow behavior around marine biofilms

IF 5.9 Q1 MICROBIOLOGY Biofilm Pub Date : 2024-06-01 DOI:10.1016/j.bioflm.2024.100204
Maria J. Romeu , João M. Miranda , Ed. D. de Jong , João Morais , Vítor Vasconcelos , Jelmer Sjollema , Filipe J. Mergulhão
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引用次数: 0

Abstract

In vitro platforms capable of mimicking the hydrodynamic conditions prevailing in natural aquatic environments have been previously validated and used to predict the fouling behavior on different surfaces. Computational Fluid Dynamics (CFD) has been used to predict the shear forces occurring in these platforms. In general, these predictions are made for the initial stages of biofilm formation, where the amount of biofilm does not affect the flow behavior, enabling the estimation of the shear forces that initial adhering organisms have to withstand. In this work, we go a step further in understanding the flow behavior when a mature biofilm is present in such platforms to better understand the shear rate distribution affecting marine biofilms. Using 3D images obtained by Optical Coherence Tomography, a mesh was produced and used in CFD simulations. Biofilms of two different marine cyanobacteria were developed in agitated microtiter plates incubated at two different shaking frequencies for 7 weeks. The biofilm-flow interactions were characterized in terms of the velocity field and shear rate distribution. Results show that global hydrodynamics imposed by the different shaking frequencies affect biofilm architecture and also that this architecture affects local hydrodynamics, causing a large heterogeneity in the shear rate field. Biofilm cells located in the streamers of the biofilm are subjected to much higher shear values than those located on the bottom of the streamers and this dispersion in shear rate values increases at lower bulk fluid velocities. This heterogeneity in the shear force field may be a contributing factor for the heterogeneous behavior in metabolic activity, growth status, gene expression pattern, and antibiotic resistance often associated with nutrient availability within the biofilm.

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了解海洋生物薄膜周围的流动行为
体外平台能够模拟自然水生环境中普遍存在的流体动力条件,此前已通过验证并用于预测不同表面的污垢行为。计算流体动力学(CFD)被用来预测这些平台中发生的剪切力。一般来说,这些预测是针对生物膜形成的初始阶段进行的,生物膜的数量不会影响流动行为,因此可以估算初始附着生物必须承受的剪切力。在这项工作中,我们将进一步了解此类平台中存在成熟生物膜时的流动行为,从而更好地理解影响海洋生物膜的剪切率分布。我们利用光学相干断层扫描获得的三维图像制作了一个网格,并将其用于 CFD 模拟。两种不同海洋蓝藻的生物膜在搅拌微孔板中形成,并在两种不同的振荡频率下培养了 7 周。从速度场和剪切率分布的角度描述了生物膜与水流的相互作用。结果表明,不同振动频率施加的整体流体力学会影响生物膜的结构,这种结构也会影响局部流体力学,从而导致剪切率场的巨大异质性。位于生物膜流线上的生物膜细胞受到的剪切力值远远高于位于流线底部的生物膜细胞,在较低的流体速度下,剪切速率值的这种分散性会增加。剪切力场中的这种异质性可能是造成生物膜内代谢活动、生长状态、基因表达模式和抗生素耐药性等异质性行为的一个因素,而这些行为往往与生物膜内的营养物质可用性有关。
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来源期刊
Biofilm
Biofilm MICROBIOLOGY-
CiteScore
7.50
自引率
1.50%
发文量
30
审稿时长
57 days
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