Clavel Thomas, Faber Franziska, Groussin Mathieu, Haller Dirk, Overmann Jörg, Pauvert Charlie, Poyet Mathilde, Selkrig Joel, Stecher Bärbel, Typas Athanasios, Vehreschild Maria J G T, Westermann Alexander J, Wylensek David, Maier Lisa
Functional Microbiome Research Group, Institute of Medical Microbiology, RWTH University Hospital, Aachen, Germany.
Institute for Hygiene and Microbiology, Faculty of Medicine, University of Würzburg, Würzburg, Germany.
Nat Biotechnol. 2025 Apr 29. doi: 10.1038/s41587-025-02660-6.
Microbiomes are complex communities of microorganisms that are essential for biochemical processes on Earth and for the health of humans, animals and plants. Many environmental and host-associated microbiomes are dominated by anaerobic microbes, some of which cannot tolerate oxygen. Anaerobic microbial communities have been extensively studied over the last 20 years using molecular techniques, especially next-generation sequencing. However, there is a renewed interest in microbial cultivation because isolates provide the basis for understanding the taxonomic and functional units of biodiversity, elucidating novel biochemical pathways and the mechanisms underlying microbe-microbe and microbe-host interactions and opening new avenues for biotechnological and clinical applications. In this Perspective, we present areas of research and applications that will benefit from advancement in anaerobic microbial cultivation. We highlight key technical and infrastructural hurdles associated with the development and deployment of sophisticated cultivation workflows. Improving the performance of cultivation techniques will set new trends in functional microbiome research in the coming years.
微生物群落是复杂的微生物群体,对地球上的生物化学过程以及人类、动物和植物的健康至关重要。许多与环境和宿主相关的微生物群落以厌氧微生物为主导,其中一些无法耐受氧气。在过去20年中,利用分子技术,尤其是下一代测序技术,对厌氧微生物群落进行了广泛研究。然而,人们对微生物培养重新产生了兴趣,因为分离物为理解生物多样性的分类和功能单位、阐明新的生化途径以及微生物-微生物和微生物-宿主相互作用的潜在机制提供了基础,并为生物技术和临床应用开辟了新途径。在这篇观点文章中,我们介绍了将受益于厌氧微生物培养进展的研究和应用领域。我们强调了与复杂培养工作流程的开发和部署相关的关键技术和基础设施障碍。提高培养技术的性能将在未来几年为功能性微生物群落研究设定新趋势。