College of Biotechnology, Tianjin University of Science & Technology, Tianjin, 300457, China.
Tianjin Institute of Industrial Biotechnology, Chinese Academy of Sciences, Tianjin, 300308, China.
Microb Cell Fact. 2024 Sep 3;23(1):238. doi: 10.1186/s12934-024-02513-y.
Benzyl acetate is an aromatic ester with a jasmine scent. It was discovered in plants and has broad applications in food, cosmetic, and pharmaceutical industries. Its current production predominantly relies on chemical synthesis. In this study, Escherichia coli was engineered to produce benzyl acetate.
Two biosynthetic routes based on the CoA-dependent β-oxidation pathway were constructed in E. coli for benzyl acetate production. In route I, benzoic acid pathway was extended to produce benzyl alcohol by combining carboxylic acid reductase and endogenous dehydrogenases and/or aldo-keto reductases in E. coli. Benzyl alcohol was then condensed with acetyl-CoA by the alcohol acetyltransferase ATF1 from yeast to form benzyl acetate. In route II, a plant CoA-dependent β-oxidation pathway via benzoyl-CoA was assessed for benzyl alcohol and benzyl acetate production in E. coli. The overexpression of the phosphotransacetylase from Clostridium kluyveri (CkPta) further improved benzyl acetate production in E. coli. Two-phase extractive fermentation in situ was adopted and optimized for benzyl acetate production in a shake flask. The most optimal strain produced 3.0 ± 0.2 g/L benzyl acetate in 48 h by shake-flask fermentation.
We were able to establish the whole pathway for benzyl acetate based on the CoA-dependent β-oxidation in single strain for the first time. The highest titer for benzyl acetate produced from glucose by E. coli is reported. Moreover, cinnamyl acetate production as an unwanted by-product was very low. Results provided novel information regarding the engineering benzyl acetate production in microorganisms.
乙酸苄酯是一种具有茉莉香味的芳香酯。它在植物中被发现,在食品、化妆品和制药行业有广泛的应用。目前其主要通过化学合成生产。本研究通过工程改造大肠杆菌来生产乙酸苄酯。
构建了两条基于 CoA 依赖性β-氧化途径的生物合成途径,用于大肠杆菌中乙酸苄酯的生产。在途径 I 中,通过将羧酸还原酶和内源性脱氢酶和/或醛酮还原酶与大肠杆菌中的苯丙氨酸途径相结合,扩展了苯丙氨酸途径以生产苄醇。然后,通过酵母中的醇乙酰转移酶 ATF1 将苄醇与乙酰辅酶 A 缩合形成乙酸苄酯。在途径 II 中,评估了通过苯甲酰辅酶 A 的植物 CoA 依赖性β-氧化途径在大肠杆菌中生产苄醇和乙酸苄酯。来自克氏梭菌的磷酸转乙酰酶(CkPta)的过表达进一步提高了大肠杆菌中乙酸苄酯的生产。采用两相萃取原位发酵并对摇瓶发酵进行了优化。最佳菌株在摇瓶发酵 48 小时内产生了 3.0±0.2 g/L 的乙酸苄酯。
我们首次在单菌株中建立了基于 CoA 依赖性β-氧化的完整乙酸苄酯合成途径。报告了大肠杆菌从葡萄糖生产乙酸苄酯的最高浓度。此外,作为副产物的肉桂酸乙酯的产量非常低。结果为微生物工程生产乙酸苄酯提供了新的信息。