Enzyme and Microbial Biochemistry Laboratory, Department of Chemistry, Indian Institute of Technology, New Delhi, India.
RNA Laboratory, Department of Chemistry, Indian Institute of Technology, New Delhi, India.
J Basic Microbiol. 2021 Jan;61(1):4-14. doi: 10.1002/jobm.202000407. Epub 2020 Sep 8.
Implementing two-way strategies to enhance the lipid production in Rhodotorula mucilaginosa with the help of metabolic engineering was focused on the overexpression of acetyl coenzyme A carboxylase (ACC1 carboxylase) gene and repression of 3-hydroxy 3-methylglutaryl reductase (HMG-CoA reductase). Using an inducer (sodium citrate) and inhibitor (rosuvastatin), the amounts of biomass, lipid, and carotenoid were estimated. In the presence of inhibitor (200 mM), 62% higher lipid concentration was observed, while 44% enhancement was recorded when inducer (3 mM) was used. A combination of both inhibitor and inducer resulted in a 57% increase in lipid concentration by the oleaginous yeast. These results were again confirmed by real-time polymerase chain reaction by targeting the expression of the genes coding for ACC1 carboxylase and 13-fold increase was recorded in the presence of inducer as compared with control. This combined strategy (inducer and inhibitor use) has been reported for the first time as far as the best of our knowledge. The metabolic engineering strategies reported here will be a powerful approach for the enhanced commercial production of lipids.
采用代谢工程,通过过表达乙酰辅酶 A 羧化酶 (ACC1 羧化酶) 基因和抑制 3-羟-3-甲基戊二酰辅酶 A 还原酶 (HMG-CoA 还原酶),专注于实现粘红酵母的双向策略,以提高其脂类产量。使用诱导剂 (柠檬酸钠) 和抑制剂 (瑞舒伐他汀) 来估算生物量、脂质和类胡萝卜素的含量。在抑制剂 (200mM) 的存在下,观察到脂质浓度提高了 62%,而在使用诱导剂 (3mM) 的情况下,提高了 44%。当同时使用抑制剂和诱导剂时,油脂酵母中的脂质浓度增加了 57%。通过实时聚合酶链反应靶向编码 ACC1 羧化酶的基因的表达,再次证实了这些结果,与对照相比,诱导剂存在时的表达增加了 13 倍。据我们所知,这种组合策略(诱导剂和抑制剂的使用)是首次报道。这里报道的代谢工程策略将为脂质的增强型商业生产提供有力的方法。