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Interaction of Bacterial Populations in Coupled Microchambers

机译:耦合微腔室内细菌种群的相互作用

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Abstract Micro- and nanotechnology offer tools that enable new approaches in microbiology and biotechnology. With microfluidic technologies we are able to manipulate liquids in a precise, well-controlled manner in microscopic dimensions. A microfluidic setup for studying interacting bacterial populations is presented in this work. Bacterial cultures were grown in a device within distinct microchambers and channels that are separated by porous membranes. This membrane acts as a physical boundary for the populations in each chamber, nevertheless it enables chemical coupling between them. The free diffusional transport of nutrients and secreted products throughout the microfluidic chip results in a chemical anisotropy within the bacterial microhabitats. Such heterogeneities affect the development and spatial distribution of the cell populations. We observed attractive and repulsive interactions between the bacterial populations and showed that chemotaxis and likely intercellular signaling play a fundamental role in these phenomena. Our results show that at population level biochemical interactions have to be considered when using microreactors or microchambers to culture bacteria.
机译:摘要微米和纳米技术提供了使微生物学和生物技术采用新方法的工具。借助微流体技术,我们能够在微观尺寸上以精确,可控的方式操纵液体。在这项工作中提出了一种用于研究相互作用的细菌种群的微流体装置。细菌培养物在由多孔膜分隔的不同微腔和通道内的设备中生长。该膜充当每个腔室中种群的物理边界,尽管如此,它仍可以使它们之间发生化学偶联。营养物质和分泌产物在整个微流控芯片中的自由扩散运输会导致细菌微生境内发生化学各向异性。这种异质性影响细胞群体的发育和空间分布。我们观察到细菌种群之间有吸引力和排斥的相互作用,并表明趋化性和可能的​​细胞间信号传导在这些现象中起着基本作用。我们的结果表明,在人群水平上,使用微反应器或微室培养细菌时必须考虑生化相互作用。

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