Moutinho Thomas J, Panagides John C, Biggs Matthew B, Medlock Gregory L, Kolling Glynis L, Papin Jason A
Department of Biomedical Engineering, University of Virginia, Charlottesville, Virginia, United States of America.
PLoS One. 2017 Aug 2;12(8):e0182163. doi: 10.1371/journal.pone.0182163. eCollection 2017.
Interactions between microbes are central to the dynamics of microbial communities. Understanding these interactions is essential for the characterization of communities, yet challenging to accomplish in practice. There are limited available tools for characterizing diffusion-mediated, contact-independent microbial interactions. A practical and widely implemented technique in such characterization involves the simultaneous co-culture of distinct bacterial species and subsequent analysis of relative abundance in the total population. However, distinguishing between species can be logistically challenging. In this paper, we present a low-cost, vertical membrane, co-culture plate to quantify contact-independent interactions between distinct bacterial populations in co-culture via real-time optical density measurements. These measurements can be used to facilitate the analysis of the interaction between microbes that are physically separated by a semipermeable membrane yet able to exchange diffusible molecules. We show that diffusion across the membrane occurs at a sufficient rate to enable effective interaction between physically separate cultures. Two bacterial species commonly found in the cystic fibrotic lung, Pseudomonas aeruginosa and Burkholderia cenocepacia, were co-cultured to demonstrate how this plate may be implemented to study microbial interactions. We have demonstrated that this novel co-culture device is able to reliably generate real-time measurements of optical density data that can be used to characterize interactions between microbial species.
微生物之间的相互作用是微生物群落动态变化的核心。理解这些相互作用对于群落特征的描述至关重要,但在实践中却颇具挑战。用于表征扩散介导的、不依赖接触的微生物相互作用的可用工具有限。在这种表征中,一种实用且广泛应用的技术涉及将不同细菌物种同时进行共培养,随后分析总群体中的相对丰度。然而,从逻辑上来说,区分不同物种具有挑战性。在本文中,我们展示了一种低成本的垂直膜共培养平板,通过实时光密度测量来量化共培养中不同细菌群体之间不依赖接触的相互作用。这些测量可用于促进对被半透膜物理分隔但能够交换可扩散分子的微生物之间相互作用的分析。我们表明,跨膜扩散以足够的速率发生,以使物理上分离的培养物之间能够进行有效的相互作用。将囊性纤维化肺部常见的两种细菌物种铜绿假单胞菌和洋葱伯克霍尔德菌进行共培养,以展示该平板如何用于研究微生物相互作用。我们已经证明,这种新型共培养装置能够可靠地生成可用于表征微生物物种之间相互作用的实时光密度数据测量结果。