Departament de Química Orgànica, Facultat de Farmàcia, Universitat de València, Burjassot, València, Spain.
Department of Medicine (Infectious Disease Division), School of Medicine & Public Health, University of Wisconsin-Madison, Madison, WI, USA.
World J Microbiol Biotechnol. 2022 Jan 6;38(2):27. doi: 10.1007/s11274-021-03213-0.
Natural hypersaline environments are inhabited by an abundance of prokaryotic and eukaryotic microorganisms capable of thriving under extreme saline conditions. Yeasts represent a substantial fraction of halotolerant eukaryotic microbiomes and are frequently isolated as food contaminants and from solar salterns. During the last years, a handful of new species has been discovered in moderate saline environments, including estuarine and deep-sea waters. Although Saccharomyces cerevisiae is considered the primary osmoadaptation model system for studies of hyperosmotic stress conditions, our increasing understanding of the physiology and molecular biology of halotolerant yeasts provides new insights into their distinct metabolic traits and provides novel and innovative opportunities for genome mining of biotechnologically relevant genes. Yeast species such as Debaryomyces hansenii, Zygosaccharomyces rouxii, Hortaea werneckii and Wallemia ichthyophaga show unique properties, which make them attractive for biotechnological applications. Select halotolerant yeasts are used in food processing and contribute to aromas and taste, while certain gene clusters are used in second generation biofuel production. Finally, both pharmaceutical and chemical industries benefit from applications of halotolerant yeasts as biocatalysts. This comprehensive review summarizes the most recent findings related to the biology of industrially-important halotolerant yeasts and provides a detailed and up-to-date description of modern halotolerant yeast-based biotechnological applications.
自然高盐环境中栖息着大量能够在极端盐环境中茁壮成长的原核和真核微生物。酵母是耐盐真核微生物群落的重要组成部分,经常作为食品污染物和从太阳盐场中分离出来。在过去的几年中,在中度盐环境中发现了少数新物种,包括河口和深海水域。尽管酿酒酵母被认为是研究高渗胁迫条件的主要渗透适应模型系统,但我们对耐盐酵母的生理学和分子生物学的理解不断加深,为它们独特的代谢特征提供了新的见解,并为生物技术相关基因的基因组挖掘提供了新的和创新的机会。德巴利酵母属、鲁氏酵母属、海氏威克酵母属和 Ichthyophaga 酵母属等酵母具有独特的特性,使它们成为有吸引力的生物技术应用的对象。选择耐盐酵母用于食品加工,有助于产生香气和味道,而某些基因簇用于第二代生物燃料生产。最后,制药和化工行业都受益于耐盐酵母作为生物催化剂的应用。这篇全面的综述总结了与工业上重要的耐盐酵母生物学相关的最新发现,并详细描述了现代基于耐盐酵母的生物技术应用。