Resolving spatiotemporal dynamics in bacterial multicellular populations: approaches and challenges.

IF 8 1区 生物学 Q1 MICROBIOLOGY
Microbiology and Molecular Biology Reviews Pub Date : 2025-03-27 Epub Date: 2025-01-24 DOI:10.1128/mmbr.00138-24
Suyen Solange Espinoza Miranda, Gorkhmaz Abbaszade, Wolfgang R Hess, Knut Drescher, Antoine-Emmanuel Saliba, Vasily Zaburdaev, Liraz Chai, Klaus Dreisewerd, Alexander Grünberger, Christian Westendorf, Susann Müller, Thorsten Mascher
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引用次数: 0

Abstract

SUMMARYThe development of multicellularity represents a key evolutionary transition that is crucial for the emergence of complex life forms. Although multicellularity has traditionally been studied in eukaryotes, it originates in prokaryotes. Coordinated aggregation of individual cells within the confines of a colony results in emerging, higher-level functions that benefit the population as a whole. During colony differentiation, an almost infinite number of ecological and physiological population-forming forces are at work, creating complex, intricate colony structures with divergent functions. Understanding the assembly and dynamics of such populations requires resolving individual cells or cell groups within such macroscopic structures. Addressing how each cell contributes to the collective action requires pushing the resolution boundaries of key technologies that will be presented in this review. In particular, single-cell techniques provide powerful tools for studying bacterial multicellularity with unprecedented spatial and temporal resolution. These advancements include novel microscopic techniques, mass spectrometry imaging, flow cytometry, spatial transcriptomics, single-bacteria RNA sequencing, and the integration of spatiotemporal transcriptomics with microscopy, alongside advanced microfluidic cultivation systems. This review encourages exploring the synergistic potential of the new technologies in the study of bacterial multicellularity, with a particular focus on individuals in differentiated bacterial biofilms (colonies). It highlights how resolving population structures at the single-cell level and understanding their respective functions can elucidate the overarching functions of bacterial multicellular populations.

解决细菌多细胞群体的时空动态:方法和挑战。
多细胞生物的发展代表了一个关键的进化转变,对复杂生命形式的出现至关重要。虽然多细胞性传统上是在真核生物中研究的,但它起源于原核生物。单个细胞在一个群体范围内的协调聚集导致了新兴的、更高层次的功能,使整个群体受益。在群体分化过程中,几乎无限数量的生态和生理种群形成力量在起作用,创造了具有不同功能的复杂,复杂的群体结构。了解这些群体的组装和动态需要在这样的宏观结构中解决单个细胞或细胞群。解决每个单元如何为集体行动做出贡献需要推动关键技术的分辨率边界,这些技术将在本文中介绍。特别是,单细胞技术为研究细菌多细胞性提供了强大的工具,具有前所未有的空间和时间分辨率。这些进步包括新的显微技术,质谱成像,流式细胞术,空间转录组学,单细菌RNA测序,以及时空转录组学与显微镜的整合,以及先进的微流体培养系统。这篇综述鼓励探索新技术在细菌多细胞性研究中的协同潜力,特别关注分化细菌生物膜(菌落)中的个体。它强调了如何在单细胞水平上解决种群结构并理解它们各自的功能可以阐明细菌多细胞种群的总体功能。
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来源期刊
CiteScore
18.80
自引率
0.80%
发文量
27
期刊介绍: Microbiology and Molecular Biology Reviews (MMBR), a journal that explores the significance and interrelationships of recent discoveries in various microbiology fields, publishes review articles that help both specialists and nonspecialists understand and apply the latest findings in their own research. MMBR covers a wide range of topics in microbiology, including microbial ecology, evolution, parasitology, biotechnology, and immunology. The journal caters to scientists with diverse interests in all areas of microbial science and encompasses viruses, bacteria, archaea, fungi, unicellular eukaryotes, and microbial parasites. MMBR primarily publishes authoritative and critical reviews that push the boundaries of knowledge, appealing to both specialists and generalists. The journal often includes descriptive figures and tables to enhance understanding. Indexed/Abstracted in various databases such as Agricola, BIOSIS Previews, CAB Abstracts, Cambridge Scientific Abstracts, Chemical Abstracts Service, Current Contents- Life Sciences, EMBASE, Food Science and Technology Abstracts, Illustrata, MEDLINE, Science Citation Index Expanded (Web of Science), Summon, and Scopus, among others.
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