群落生活引起代谢行为的变化,并在两种细菌共培养系统的特定生长条件下被允许。

IF 2.7 3区 生物学 Q3 MICROBIOLOGY
Elizabeth Ellis, Sam Fulte, Skyler Boylan, Alaina Flory, Katherine Paine, Sophia Lopez, Grace Allen, Kanwar Warya, Javier Ortiz-Merino, Sadie Blacketer, Samantha Thompson, Sierra Sanchez, Kayla Burdette, Audrey Duchscherer, Nick Pinkham, Joseph D Shih, Lilah Rahn-Lee
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引用次数: 0

摘要

虽然细菌存在于环境中复杂的微生物群落中,但它们的特征和行为通常是在单一培养中研究的。虽然环境丰富或具有数十或数百个成员的复杂共培养可能更准确地代表细菌的自然群落,但我们试图创造简单的生物体对,以了解什么条件可以成功地共培养,以及当伴侣物种存在时细菌如何改变转录。共培养了铜绿假单胞菌和大肠杆菌、鼠李糖乳杆菌和拟杆菌两对微生物。起初,两种共同培养都失败了,其中一种生物比另一种生物更具竞争力。然而,通过操纵媒介和环境条件,我们为每个群体创造了具有稳定成员比例的共培养,并持续了许多代。然后,我们发现代谢基因表达的变化存在于所有被研究的物种中,关键的分解代谢和合成代谢途径通常在另一种生物存在时上调。这些基因表达的变化不会在不能成功共培养的条件下发生,这表明它们对于适应和生存在其他物种的存在是必不可少的。重要性:1882年,Robert Koch和Fanny Hesse开发了琼脂平板,使微生物学家能够将单个微生物细胞彼此分离,并创建单一菌株的单一培养。在近150年的时间里,这个强大的工具一直被用来对细菌细胞的结构、它们如何管理和处理它们的信息,以及它们如何对环境做出反应,产生与环境相匹配的行为有了深入的了解。我们很好奇细菌的行为,通过它们的基因表达来衡量,在经过充分研究的单一培养条件和共同培养条件下是如何变化的。我们发现只有特定的生长条件允许共同培养,细菌在伴侣存在的情况下改变它们的代谢策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Community living causes changes in metabolic behavior and is permitted by specific growth conditions in two bacterial co-culture systems.

Although bacteria exist in complex microbial communities in the environment, their features and behavior are most often studied in monoculture. While environmental enrichments or complex co-cultures with tens or hundreds of members might more accurately represent the natural communities of bacteria, we sought to create simple pairs of organisms to learn what conditions create successful co-culture and how bacteria change transcriptionally when a partner species is present. We grew two pairs of organisms in co-culture, Pseudomonas aeruginosa and Escherichia coli and Lacticaseibacillus rhamnosus and Bacteroides thetaiotaomicron. At first, both co-cultures failed, with one organism outcompeting the other. However, through manipulating media and environmental conditions, we created co-cultures with stable member ratios over many generations for each community. We then show that changes in the expression of metabolic genes are present in all studied species, with key catabolic and anabolic pathways often upregulated in the presence of another organism. These changes in gene expression fail to occur in conditions that will not lead to successful co-culture, suggesting they are essential for adapting to and surviving in the presence of others.

Importance: In 1882, Robert Koch and Fanny Hesse developed the agar plate, which enabled microbiologists to separate individual microbial cells from each other and create monocultures of a single strain of bacteria. This powerful tool has been used in the almost 150 years since to develop a robust understanding of how bacterial cells are structured, how they manage and process their information, and how they respond to the environment to produce behaviors that match their circumstances. We were curious about how the behavior of bacteria, as measured by their gene expression, changes between well-studied monoculture conditions and co-culture. We found that only specific growth conditions permit co-culture and that bacteria change their metabolic strategies in the presence of a partner.

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来源期刊
Journal of Bacteriology
Journal of Bacteriology 生物-微生物学
CiteScore
6.10
自引率
9.40%
发文量
324
审稿时长
1.3 months
期刊介绍: The Journal of Bacteriology (JB) publishes research articles that probe fundamental processes in bacteria, archaea and their viruses, and the molecular mechanisms by which they interact with each other and with their hosts and their environments.
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