The Key Laboratory of Industrial Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, 214122, P. R. China.
The Key Laboratory of Carbohydrate Chemistry and Biotechnology, Ministry of Education, School of Biotechnology, Jiangnan University, Wuxi, 214122, P. R. China.
J Microbiol. 2022 Dec;60(12):1191-1200. doi: 10.1007/s12275-022-2344-0. Epub 2022 Oct 24.
Terpenes have many applications and are widely found in nature, but recent progress in synthetic biology has enabled the use of microorganisms as chassis cells for the synthesis of these compounds. Candida glycerinogenes (C. glycerinogenes) is an industrial strain that may be developed as a chassis for the synthesis of terpenes since it has a tolerance to hyperosmolality and high sugar, and has a complete mevalonate (MVA) pathway. However, monoterpenes such as pinene are highly toxic, and the tolerance of C. glycerinogenes to pinene was investigated. We also measured the content of mevalonate and squalene to evaluate the strength of the MVA pathway. To determine terpene synthesis capacity, a pathway for the synthesis of pinene was constructed in C. glycerinogenes. Pinene production was improved by overexpression, gene knockdown and antisense RNA inhibition. Pinene production was mainly enhanced by strengthening the upstream MVA pathway and inhibiting the production of by-products from the downstream pathway. With these strategies, yield could be increased by almost 16 times, to 6.0 mg/L. Overall, we successfully constructed a pinene synthesis pathway in C. glycerinogenes and enhanced pinene production through metabolic modification.
萜类化合物具有多种应用,广泛存在于自然界中,但最近合成生物学的进展使得可以利用微生物作为底盘细胞来合成这些化合物。Candida glycerinogenes(C. glycerinogenes)是一种工业菌株,由于其对高渗透压和高糖的耐受性,以及完整的甲羟戊酸(MVA)途径,因此可以开发为萜类化合物合成的底盘。然而,单萜类化合物如松油精具有很高的毒性,因此研究了 C. glycerinogenes 对松油精的耐受性。我们还测量了甲羟戊酸和角鲨烯的含量,以评估 MVA 途径的强度。为了确定萜类化合物的合成能力,在 C. glycerinogenes 中构建了松油精合成途径。通过过表达、基因敲低和反义 RNA 抑制来提高松油精的产量。通过加强上游 MVA 途径和抑制下游途径的副产物的产生,主要提高了松油精的产量。通过这些策略,产量可提高近 16 倍,达到 6.0mg/L。总的来说,我们成功地在 C. glycerinogenes 中构建了松油精合成途径,并通过代谢修饰提高了松油精的产量。