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微生物单细胞在缺氧条件下的应用。

Microbial single-cell applications under anoxic conditions.

机构信息

Department of Engineering, Durham University, Durham, United Kingdom.

Department of Marine Microbiology and Biogeochemistry, Royal Netherlands Institute for Sea Research (NIOZ), Den Burg, the Netherlands.

出版信息

Appl Environ Microbiol. 2024 Nov 20;90(11):e0132124. doi: 10.1128/aem.01321-24. Epub 2024 Sep 30.

Abstract

The field of microbiology traditionally focuses on studying microorganisms at the population level. Nevertheless, the application of single-cell level methods, including microfluidics and imaging techniques, has revealed heterogeneity within populations, making these methods essential to understand cellular activities and interactions at a higher resolution. Moreover, single-cell sorting has opened new avenues for isolating cells of interest from microbial populations or complex microbial communities. These isolated cells can be further interrogated in downstream single-cell "omics" analyses, providing physiological and functional information. However, applying these methods to study anaerobic microorganisms under conditions remains challenging due to their sensitivity to oxygen. Here, we review the existing methodologies for the analysis of viable anaerobic microorganisms at the single-cell level, including live-imaging, cell sorting, and microfluidics (lab-on-chip) applications, and we address the challenges involved in their anoxic operation. Additionally, we discuss the development of non-destructive imaging techniques tailored for anaerobes, such as oxygen-independent fluorescent probes and alternative approaches.

摘要

微生物学领域传统上侧重于研究群体水平的微生物。然而,单细胞水平方法的应用,包括微流控和成像技术,揭示了群体内部的异质性,这使得这些方法对于以更高的分辨率理解细胞活动和相互作用至关重要。此外,单细胞分选为从微生物群体或复杂微生物群落中分离感兴趣的细胞开辟了新途径。这些分离的细胞可以在下游的单细胞“组学”分析中进一步检测,提供生理和功能信息。然而,由于它们对氧气的敏感性,将这些方法应用于研究厌氧微生物的条件仍然具有挑战性。在这里,我们回顾了在单细胞水平分析可培养厌氧微生物的现有方法,包括活细胞成像、细胞分选和微流控(芯片实验室)应用,并讨论了它们在缺氧操作中涉及的挑战。此外,我们还讨论了为厌氧菌量身定制的非破坏性成像技术的发展,例如不依赖于氧气的荧光探针和替代方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8c0d/11577760/71d7a91023c0/aem.01321-24.f001.jpg

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