在极端环境中挖掘微生物和代谢暗物质:利用多组学数据力量的路线图。

Jia-Rui Han, Shuai Li, Wen-Jun Li, Lei Dong
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引用次数: 0

摘要

极端环境,如超干旱、高盐、高温环境和深海,孕育着各种各样的微生物群落,它们特别适应极端条件,被称为极端微生物。这些嗜极生物已经发展出独特的生存策略,使它们成为研究微生物多样性、进化和逆境适应的理想模型。它们在生物地球化学循环中也起着关键作用。此外,极端微生物经常产生新的生物活性化合物,以应对相应的挑战环境。最近的技术进步,包括基因组测序和非靶向代谢组学分析,极大地提高了我们对极端微生物多样性、生态学、进化以及遗传和生理特征的理解。将先进的多组学技术整合到依赖于培养的研究中,显著提高了效率,为研究极端微生物的生理功能和生物合成能力提供了有价值的见解。在极端环境中大量未开发的微生物资源为发现新的天然产物和推进我们对微生物生态学和进化的认识提供了大量机会。本文综述了嗜极微生物组的研究现状,重点从微生物多样性、生态作用、分离培养策略、生物合成潜力等方面进行了综述。此外,我们强调发现更多菌株资源和代谢物的重要性和潜力,利用多组学数据的力量将大大促进这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mining microbial and metabolic dark matter in extreme environments: a roadmap for harnessing the power of multi-omics data.

Extreme environments such as hyperarid, hypersaline, hyperthermal environments, and the deep sea harbor diverse microbial communities, which are specially adapted to extreme conditions and are known as extremophiles. These extremophilic organisms have developed unique survival strategies, making them ideal models for studying microbial diversity, evolution, and adaptation to adversity. They also play critical roles in biogeochemical cycles. Additionally, extremophiles often produce novel bioactive compounds in response to corresponding challenging environments. Recent advances in technologies, including genomic sequencing and untargeted metabolomic analysis, have significantly enhanced our understanding of microbial diversity, ecology, evolution, and the genetic and physiological characteristics in extremophiles. The integration of advanced multi-omics technologies into culture-dependent research has notably improved the efficiency, providing valuable insights into the physiological functions and biosynthetic capacities of extremophiles. The vast untapped microbial resources in extreme environments present substantial opportunities for discovering novel natural products and advancing our knowledge of microbial ecology and evolution. This review highlights the current research status on extremophilic microbiomes, focusing on microbial diversity, ecological roles, isolation and cultivation strategies, and the exploration of their biosynthetic potential. Moreover, we emphasize the importance and potential of discovering more strain resources and metabolites, which would be boosted greatly by harnessing the power of multi-omics data.

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