Metabolic engineering for enhanced fatty acids synthesis in Saccharomyces cerevisiae

ATP柠檬酸裂解酶 生物化学 酵母 柠檬酸循环 代谢工程 酿酒酵母 乙酰辅酶A 胞浆 异源表达 脂肪酸合成 脂肪酸 发酵 裂解酶 拉伤 化学 生物 新陈代谢 柠檬酸合酶 基因 重组DNA 解剖
作者
Xiaoling Tang,Huixing Feng,Wei Ning Chen
出处
期刊:Metabolic Engineering [Elsevier BV]
卷期号:16: 95-102 被引量:94
标识
DOI:10.1016/j.ymben.2013.01.003
摘要

Microbial production of biofuel has attracted significant attention in recent years. The fatty acids are important precursors for the production of fuels and chemicals, and its biosynthesis is initiated by the conversion of acetyl-CoA to malonyl-CoA which requires acetyl-CoA as key substrate. Herein, the yeast Saccharomyces cerevisiae was proposed to be metabolically engineered for cytosol acetyl-CoA enhancement for fatty acid synthesis. By gene disruption strategy, idh1 and idh2 genes involved in citrate turnover in tricarboxylic acid cycle (TCA cycle) were disrupted and the citrate production level was increased to 4- and 5-times in mutant yeast strains. In order to convert accumulated citrate to cytosol acetyl-CoA, a heterologous ATP-citrate lyase (ACL) was overexpressed in yeast wild type and idh1,2 disrupted strains. The wild type strain expressing acl mainly accumulated saturated fatty acids: C14:0, C16:0 and C18:0 at levels about 20%, 14% and 27%, respectively. Additionally, the idh1,2 disrupted strains expressing acl mainly accumulated unsaturated fatty acids. Specifically in Δidh1 strain expressing acl, 80% increase in C16:1 and 60% increase in C18:1 was detected. In Δidh2 strain expressing acl, 60% increase in C16:1 and 45% increase in C18:1 was detected. In Δidh1/2 strain expressing acl, there was 92% increase in C16:1 and 77% increase in C18:1, respectively. The increased fatty acids from our study may well be potential substrates for the production of hydrocarbon molecules as potential biofuels.
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