Stable, fluorescent markers for tracking synthetic communities and assembly dynamics.

IF 13.8 1区 生物学 Q1 MICROBIOLOGY Microbiome Pub Date : 2024-05-07 DOI:10.1186/s40168-024-01792-2
Beatriz Jorrin, Timothy L Haskett, Hayley E Knights, Anna Martyn, Thomas J Underwood, Jessica Dolliver, Raphael Ledermann, Philip S Poole
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Abstract

Background: After two decades of extensive microbiome research, the current forefront of scientific exploration involves moving beyond description and classification to uncovering the intricate mechanisms underlying the coalescence of microbial communities. Deciphering microbiome assembly has been technically challenging due to their vast microbial diversity but establishing a synthetic community (SynCom) serves as a key strategy in unravelling this process. Achieving absolute quantification is crucial for establishing causality in assembly dynamics. However, existing approaches are primarily designed to differentiate a specific group of microorganisms within a particular SynCom.

Results: To address this issue, we have developed the differential fluorescent marking (DFM) strategy, employing three distinguishable fluorescent proteins in single and double combinations. Building on the mini-Tn7 transposon, DFM capitalises on enhanced stability and broad applicability across diverse Proteobacteria species. The various DFM constructions are built using the pTn7-SCOUT plasmid family, enabling modular assembly, and facilitating the interchangeability of expression and antibiotic cassettes in a single reaction. DFM has no detrimental effects on fitness or community assembly dynamics, and through the application of flow cytometry, we successfully differentiated, quantified, and tracked a diverse six-member SynCom under various complex conditions like root rhizosphere showing a different colonisation assembly dynamic between pea and barley roots.

Conclusions: DFM represents a powerful resource that eliminates dependence on sequencing and/or culturing, thereby opening new avenues for studying microbiome assembly. Video Abstract.

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用于跟踪合成群落和组装动态的稳定荧光标记。
背景:经过二十年广泛的微生物组研究,目前科学探索的前沿涉及超越描述和分类,揭示微生物群落凝聚的复杂机制。由于微生物种类繁多,解密微生物组的组装在技术上具有挑战性,但建立合成群落(SynCom)是揭示这一过程的关键策略。实现绝对量化对于确定组装动态的因果关系至关重要。然而,现有的方法主要是为了区分特定合成群落中的特定微生物群:为了解决这个问题,我们开发了差异荧光标记(DFM)策略,采用三种可区分的荧光蛋白单倍和双倍组合。DFM以迷你Tn7转座子为基础,具有更高的稳定性和广泛的适用性,适用于不同的蛋白细菌物种。各种 DFM 构建都使用 pTn7-SCOUT 质粒系列,实现了模块化组装,便于在单一反应中互换表达盒和抗生素盒。通过应用流式细胞仪,我们成功地分化、量化并追踪了根根瘤菌层等各种复杂条件下多样化的六元 SynCom,显示出豌豆根和大麦根之间不同的定殖组装动态:结论:DFM 是一种强大的资源,它消除了对测序和/或培养的依赖,从而为研究微生物组的组装开辟了新途径。视频摘要
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来源期刊
Microbiome
Microbiome MICROBIOLOGY-
CiteScore
21.90
自引率
2.60%
发文量
198
审稿时长
4 weeks
期刊介绍: Microbiome is a journal that focuses on studies of microbiomes in humans, animals, plants, and the environment. It covers both natural and manipulated microbiomes, such as those in agriculture. The journal is interested in research that uses meta-omics approaches or novel bioinformatics tools and emphasizes the community/host interaction and structure-function relationship within the microbiome. Studies that go beyond descriptive omics surveys and include experimental or theoretical approaches will be considered for publication. The journal also encourages research that establishes cause and effect relationships and supports proposed microbiome functions. However, studies of individual microbial isolates/species without exploring their impact on the host or the complex microbiome structures and functions will not be considered for publication. Microbiome is indexed in BIOSIS, Current Contents, DOAJ, Embase, MEDLINE, PubMed, PubMed Central, and Science Citations Index Expanded.
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