Department of Microbiology, Universidade Federal de Viçosa, Viçosa, MG, Brazil.
Department of Biochemistry and Molecular Biology, Universidade Federal de Viçosa, Viçosa, MG, Brazil.
J Appl Microbiol. 2021 Mar;130(3):878-890. doi: 10.1111/jam.14793. Epub 2020 Aug 27.
Yeasts produce 2-phenylethanol (2-PE) from sugars via de novo synthesis; however, its synthesis is limited due to feedback inhibition on the isofunctional 3-deoxy-d-arabino-heptulosonate-7-phosphate (DAHP) synthases (Aro3p and Aro4p). This work aimed to select Kluyveromyces marxianus mutant strains with improved capacity to produce 2-PE from sugars.
Kluyveromyces marxianus CCT 7735 mutant strains were selected from UV irradiation coupled with screening of p-fluoro-dl-phenylalanine (PFP) tolerant strains on culture medium without l-Phe addition. Most of them produced 2-PE titres higher than the parental strain and the Km_PFP41 mutant strain stood out for displaying the highest 2-PE specific production rate. Moreover it showed higher activity of DAHP synthase than the parental strain. We sequenced both ARO3 and ARO4 genes of Km_PFP41 mutant and identified mutations in ARO4 which caused changes in both size and conformation of the Aro4p. These changes seem to be associated with the enhanced activity of DAHP synthase and improved production of 2-PE exhibited by that mutant strain.
The Km_PFP41 mutant strain presented improved 2-PE production via de novo synthesis and enhanced DAHP synthase activity.
The mutant strain obtained in this work may be exploited as a yeast cell factory for high-level synthesis of 2-PE.
酵母通过从头合成途径利用糖产生 2-苯乙醇(2-PE);然而,由于对同工型 3-脱氧-D-阿拉伯庚酮糖-7-磷酸(DAHP)合酶(Aro3p 和 Aro4p)的反馈抑制,其合成受到限制。本研究旨在选择具有从糖中提高生产 2-PE 能力的克鲁维酵母突变株。
从紫外线照射与筛选 p-氟-dl-苯丙氨酸(PFP)耐受株相结合,从克鲁维酵母 CCT 7735 出发,在不添加 l-Phe 的培养基上进行筛选,得到突变株。它们中的大多数产生的 2-PE 滴度高于亲本菌株,Km_PFP41 突变株尤为突出,其 2-PE 比生产速率最高。此外,它还表现出比亲本菌株更高的 DAHP 合酶活性。我们对 Km_PFP41 突变株的 ARO3 和 ARO4 基因进行测序,发现 ARO4 基因发生突变,导致 Aro4p 的大小和构象发生变化。这些变化似乎与 DAHP 合酶活性的增强以及该突变株 2-PE 产量的提高有关。
Km_PFP41 突变株通过从头合成途径提高了 2-PE 的生产能力,并增强了 DAHP 合酶的活性。
本研究获得的突变株可作为酵母细胞工厂,用于 2-PE 的高水平合成。