Wang Xin, Sun Mei-Li, Lin Lu, Ledesma-Amaro Rodrigo, Wang Kaifeng, Ji Xiao-Jun
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, No. 30 South Puzhu Road, Nanjing 211816, People's Republic of China.
Department of Bioengineering and Imperial College Centre for Synthetic Biology, Imperial College London, London SW7 2AZ, United Kingdom.
Bioresour Technol. 2025 Aug;430:132593. doi: 10.1016/j.biortech.2025.132593. Epub 2025 Apr 26.
Medium-long chain dicarboxylic acids (DCAs, C ≥ 6) are essential chemical raw materials, with wide applications in the chemical, pharmaceutical, material and food industries. However, the traditional chemical synthesis methods cause environmental pollution and are not in line with goals of sustainable development. With the development of synthetic biology, high-value-added DCAs can be biosynthesized from hydrophobic substrates (HSs) using suitable microorganisms. This review first summarizes the biosynthetic pathway of DCAs in oleaginous yeasts and then emphasizes the related engineering strategies for increasing the product yield, including promoter, enzyme, pathway, cell, fermentation, and downstream engineering. In addition, the challenges and development trends in the biosynthesis of DCAs are discussed, in light of the current progress, challenges, and trends in this field. Finally, guidelines for future research are proposed. Overall, this review systematically summarizes recent engineering strategies for DCAs production in oleaginous yeasts and offers valuable insights for future DCAs biosynthesis.
中长链二元羧酸(DCAs,C≥6)是重要的化工原料,在化工、制药、材料和食品工业中有着广泛应用。然而,传统化学合成方法会造成环境污染,不符合可持续发展目标。随着合成生物学的发展,利用合适的微生物可从疏水性底物(HSs)生物合成高附加值的DCAs。本文综述首先总结了产油酵母中DCAs的生物合成途径,然后重点介绍了提高产物产量的相关工程策略,包括启动子、酶、途径、细胞、发酵及下游工程。此外,结合该领域的当前进展、挑战和趋势,讨论了DCAs生物合成中的挑战和发展趋势。最后,提出了未来研究的指导方针。总体而言,本文综述系统总结了产油酵母中DCAs生产的近期工程策略,并为未来DCAs生物合成提供了有价值的见解。