Key Laboratory of Industrial Fermentation Microbiology (Tianjin University of Science &Technology), Ministry of Education, Tianjin Key Laboratory of Industrial Microbiology, College of Biotechnology, Tianjin University of Science and Technology, Tianjin 300457, P. R. China.
J Agric Food Chem. 2021 Nov 3;69(43):12773-12784. doi: 10.1021/acs.jafc.1c04934. Epub 2021 Oct 25.
Due to its superior Δ-dehydrogenation ability, has been widely used for the biotransformation of cortisone acetate (CA) into prednisone acetate (PA) in the steroid industry. However, its molecular fundamentals are still unclear. Herein, the genome organization, gene regulation, and previously unreported genes involved in Δ-dehydrogenation are revealed through genome and transcriptome analysis. A comparative study of transcriptomes of an industrial strain induced by CA or at different biotransformation periods was performed. By overexpression, the roles of six genes in CA conversion were confirmed, among which and behaved better by reinforcing catalytic enzyme activity and substrate transmembrane transport. Additionally, GroEL endowed cells with the strongest stress tolerance by alleviating oxidative damage and enhancing energy levels. Finally, an optimal strain was created by coexpressing three genes, achieving 46.8 and 70.6% increase in PA amount and productivity compared to the initial values, respectively. Our study expanded the understanding of the Δ-dehydrogenation mechanism and offered an effective approach for excellent steroid-transforming strains.
由于其优越的 Δ-脱氢能力,已被广泛用于甾体工业中将醋酸可的松(CA)生物转化为醋酸泼尼松龙(PA)。然而,其分子基础仍不清楚。本研究通过基因组和转录组分析揭示了其基因组组织、基因调控和以前未报道的 Δ-脱氢相关基因。通过比较 CA 诱导或不同生物转化期的工业菌株的转录组,研究了转录组。通过过表达,验证了 CA 转化中六个基因的作用,其中 和 通过增强催化酶活性和底物跨膜转运表现更好。此外,GroEL 通过减轻氧化损伤和提高能量水平赋予细胞最强的应激耐受性。最后,通过共表达三个基因创建了一个最优菌株,与初始值相比,PA 量和产量分别增加了 46.8%和 70.6%。本研究扩展了对 Δ-脱氢机制的理解,并为获得优秀的甾体转化菌株提供了一种有效途径。