Wang Zhaoyue, Bai Xuejing, Guo Xuena, He Xiuping
CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, Institute of Microbiology, Chinese Academy of Sciences, Beijing, People's Republic of China.
J Ind Microbiol Biotechnol. 2017 Jan;44(1):129-139. doi: 10.1007/s10295-016-1852-5. Epub 2016 Oct 21.
2-Phenylethanol (2-PE) is widely used in food, perfume and pharmaceutical industry, but lower production in microbes and less known regulatory mechanisms of 2-PE make further study necessary. In this study, crucial genes like ARO8 and ARO10 of Ehrlich pathway for 2-PE synthesis and key transcription factor ARO80 in Saccharomyces cerevisiae were re-regulated using constitutive promoter; in the meantime, the effect of nitrogen source in synthetic complete (SC) medium with L-phenylalanine (L-Phe) on Aro8/Aro9 and Aro10 was investigated. The results showed that aromatic aminotransferase activities of ARO8 over-expressing strains were seriously inhibited by ammonia sulfate in SC + Phe medium. Flask fermentation test demonstrated that over-expressing ARO8 or ARO10 led to about 42 % increase in 2-PE production when compared with the control strain. Furthermore, influence of transcription factors Cat8 and Mig1 on 2-PE biosynthesis was explored. CAT8 over-expression or MIG1 deletion increased in the transcription of ARO9 and ARO10. 2-PE production of CAT8 over-expressing strain was 62 % higher than that of control strain. Deletion of MIG1 also led to 2-PE biosynthesis enhancement. The strain of CAT8 over-expression and MIG1 deletion was most effective in regulating expression of ARO9 and ARO10. Analysis of mRNA levels and enzyme activities indicates that transaminase in Ehrlich pathway is the crucial target of Nitrogen Catabolize Repression (NCR). Among the engineering strains, the higher 3.73 g/L 2-PE production in CAT8 over-expressing strain without in situ product recovery suggests that the robust strain has potentiality for commercial exploitation.
2-苯乙醇(2-PE)广泛应用于食品、香料和制药行业,但微生物中其产量较低且2-PE的调控机制鲜为人知,因此有必要进一步研究。在本研究中,使用组成型启动子对酿酒酵母中2-PE合成的埃利希途径的关键基因如ARO8和ARO10以及关键转录因子ARO80进行了重新调控;同时,研究了在含有L-苯丙氨酸(L-Phe)的合成完全(SC)培养基中氮源对Aro8/Aro9和Aro10的影响。结果表明,在SC + Phe培养基中,硫酸铵严重抑制了ARO8过表达菌株的芳香族转氨酶活性。摇瓶发酵试验表明,与对照菌株相比,过表达ARO8或ARO10可使2-PE产量提高约42%。此外,还探索了转录因子Cat8和Mig1对2-PE生物合成的影响作用。CAT8过表达或MIG1缺失会使ARO9和ARO10的转录增加。CAT8过表达菌株的2-PE产量比对照菌株高62%。缺失MIG1也导致2-PE生物合成增强。CAT8过表达和MIG1缺失的菌株在调节ARO9和ARO10的表达方面最有效。mRNA水平和酶活性分析表明,埃利希途径中的转氨酶是氮分解代谢物阻遏(NCR)的关键靶点。在工程菌株中,在没有原位产物回收的情况下,CAT8过表达菌株中较高的2-PE产量为3.73 g/L,这表明该优良菌株具有商业开发潜力。