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酵母中周质天冬酰胺酶 Asp3 的进化和作用。

The evolution and role of the periplasmic asparaginase Asp3 in yeast.

机构信息

School of Microbiology, University College Cork, Cork T12 K8AF, Ireland.

SPO, Université Montpellier, INRAE, Institut Agro, Montpellier 34060, France.

出版信息

FEMS Yeast Res. 2022 Oct 3;22(1). doi: 10.1093/femsyr/foac044.

Abstract

The study of nitrogen assimilation in yeast is of interest from genetic, evolutionary, and biotechnological perspectives. Over the course of evolution, yeasts have developed sophisticated control mechanisms to regulate nitrogen metabolism, with domesticated lineages sometimes displaying particular specialisation. The focus of this study was on assimilation of asparagine, which is a significant nutritional source for some alcoholic fermentations. We were particularly interested in ASP3, which encodes a periplasmic asparaginase and that was proposed to have been acquired relatively recently in S. cerevisiae by horizontal gene transfer. We examined 1680 S. cerevisiae genome assemblies to evaluate the distribution and evolutionary trajectory of ASP3. Our findings suggest an alternative hypothesis that ASP3 is an ancient Saccharomyces gene that has generally been lost over the course of evolution but has been retained in certain fermentative environments. As asparagine is the major nitrogen source in apple juice, we explored whether the presence of ASP3 would confer a growth advantage. Interestingly, we found that although ASP3 enhances growth when asparagine is the sole nitrogen source, the same effect is not seen in apple juice. These data indicate that growth in pure culture may not reflect the original selective environment for ASP3+ strains and highlight the role that complex regulation may play in optimising nitrogen assimilation in yeasts.

摘要

酵母氮吸收的研究从遗传学、进化和生物技术的角度来看都很有意义。在进化过程中,酵母已经发展出了复杂的控制机制来调节氮代谢,而驯化的谱系有时会表现出特定的专业化。本研究的重点是天冬酰胺的吸收,它是一些酒精发酵的重要营养来源。我们特别感兴趣的是 ASP3,它编码一种周质天冬酰胺酶,据推测它是通过水平基因转移在酿酒酵母中相对较近获得的。我们检查了 1680 个酿酒酵母基因组组装,以评估 ASP3 的分布和进化轨迹。我们的研究结果提出了一个替代假说,即 ASP3 是古老的酿酒酵母基因,在进化过程中通常会丢失,但在某些发酵环境中被保留下来。由于天冬酰胺是苹果汁中的主要氮源,我们探讨了 ASP3 的存在是否会赋予生长优势。有趣的是,我们发现尽管 ASP3 增强了在天冬酰胺作为唯一氮源时的生长,但在苹果汁中却没有看到相同的效果。这些数据表明,在纯培养物中的生长可能无法反映 ASP3+菌株的原始选择环境,并强调了复杂调控在优化酵母氮吸收方面可能发挥的作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cf55/9529253/6237a8c62aff/foac044fig1.jpg

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