Razmilic Valeria, Asenjo Juan A, Martínez Irene
Centre for Biotechnology and Bioengineering (CeBiB), Department of Chemical Engineering, Biotechnology and Materials, University of Chile, Santiago, Chile.
Biotechnol Bioeng. 2025 Apr;122(4):963-973. doi: 10.1002/bit.28917. Epub 2024 Dec 29.
Production of specialized metabolites are restricted to the metabolic capabilities of the organisms. Genome-scale models (GEM)s are useful to study the whole metabolism and to find metabolic engineering targets to increase the yield of a target compound. In this work we use a modified model of Streptomyces coelicolor M145 to simulate the production of lagmysin A (LP4) and the novel lagmysin B (LP2) lasso peptide, in the heterologous host Streptomyces coelicolor M1152. Overexpression targets were identified using the flux scanning based on enforced objective flux (FSEOF) algorithm and flux variability analysis (FVA), considering growth in minimum and in complex medium. Thirteen reactions were found as candidate metabolic engineering targets for both lasso peptides considering both settings. We propose the overexpression of enzymes of the glycolysis pathway (GAPD, PGK, PGM and ENO) and leucine biosynthesis (IPPS, IPPMIb, IPPMIa, IPMD and OMCDC) to enhance the production of either lagmysin A or B.
特殊代谢产物的产生受限于生物体的代谢能力。基因组规模模型(GEM)有助于研究整体代谢,并找到代谢工程靶点以提高目标化合物的产量。在这项工作中,我们使用天蓝色链霉菌M145的改良模型,来模拟在异源宿主天蓝色链霉菌M1152中拉格米辛A(LP4)和新型拉格米辛B(LP2)套索肽的产生。基于强制目标通量(FSEOF)算法和通量变异性分析(FVA),考虑在基本培养基和复杂培养基中的生长情况,通过通量扫描确定过表达靶点。综合两种培养条件,发现有13个反应是两种套索肽共同的候选代谢工程靶点。我们建议过表达糖酵解途径(GAPD、PGK、PGM和ENO)和亮氨酸生物合成途径(IPPS、IPPM Ib、IPPM Ia、IPMD和OMCDC)的酶,以提高拉格米辛A或B的产量。