Comparison of stress tolerance mechanisms between Saccharomyces cerevisiae and the multistress-tolerant Pichia kudriavzevii.

IF 2.4 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Thasneem Banu Frousnoon, Nam Ngoc Pham, Zong-Yen Wu, Ping-Hung Hsieh, Yasuo Yoshikuni
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Abstract

Yeasts play a vital role in both research and industrial biomanufacturing. Saccharomyces cerevisiae has been extensively utilized as a model system. However, its application is often constrained by limited tolerance to the diverse stress conditions encountered in bioprocesses. These challenges have driven increasing interest in nonconventional, multistress-tolerant yeasts as alternative biomanufacturing hosts. This review highlights Pichia kudriavzevii as a promising nonconventional yeast for industrial applications. Unlike S. cerevisiae, P. kudriavzevii exhibits exceptional tolerance to high temperatures, elevated concentrations of furanic and phenolic inhibitors, osmotic stress, salinity, and extreme pH. These traits make it an attractive candidate for industrial processes without requiring extensive genetic modifications to enhance stress resistance. As a result, P. kudriavzevii has emerged as a flagship species for advancing bioeconomy. Despite its industrial potential, the molecular mechanisms underlying P. kudriavzevii's superior stress tolerance remain poorly understood. This review compiles current knowledge on P. kudriavzevii and compares its stress tolerance mechanisms with those of S. cerevisiae, providing insights into its innate resilience. By expanding our understanding of nonconventional yeasts, this review aims to facilitate their broader adoption as robust microbial platforms for industrial biomanufacturing.

酿酒酵母与多重抗逆性毕赤酵母的抗逆性机制比较。
酵母在研究和工业生物制造中都起着至关重要的作用。酿酒酵母作为一种模式系统已被广泛利用。然而,它的应用往往受到生物过程中遇到的各种应激条件的有限耐受性的限制。这些挑战促使人们对非传统的、耐多逆境的酵母作为生物制造的替代宿主越来越感兴趣。本文综述了库德里亚夫zev毕赤酵母作为一种具有工业应用前景的非传统酵母。与酿酒酵母不同,P. kudriavzevii对高温、高浓度的呋烷和酚类抑制剂、渗透胁迫、盐度和极端ph具有特殊的耐受性。这些特性使其成为工业过程中有吸引力的候选者,无需大量的遗传修饰来增强抗逆性。因此,P. kudriavzevii已经成为推进生物经济的旗舰物种。尽管具有工业潜力,但P. kudriavzevii优越的抗逆性的分子机制仍然知之甚少。本文综述了目前关于P. kudriavzevii的知识,并将其与S. cerevisiae的抗逆性机制进行了比较,为其固有的抗逆性提供了见解。通过扩大我们对非常规酵母的理解,本综述旨在促进它们作为工业生物制造的强大微生物平台的广泛采用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
FEMS yeast research
FEMS yeast research 生物-生物工程与应用微生物
CiteScore
5.70
自引率
6.20%
发文量
54
审稿时长
1 months
期刊介绍: FEMS Yeast Research offers efficient publication of high-quality original Research Articles, Mini-reviews, Letters to the Editor, Perspectives and Commentaries that express current opinions. The journal will select for publication only those manuscripts deemed to be of major relevance to the field and generally will not consider articles that are largely descriptive without insights on underlying mechanism or biology. Submissions on any yeast species are welcome provided they report results within the scope outlined below and are of significance to the yeast field.
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