Yook Sangdo, Alper Hal S
McKetta Department of Chemical Engineering, The University of Texas at Austin, Austin, TX, 78712, United States.
Institute for Cellular and Molecular Biology, The University of Texas at Austin, Austin, TX, 78712, United States.
FEMS Yeast Res. 2025 Jan 30;25. doi: 10.1093/femsyr/foaf009.
Yeasts have emerged as well-suited microbial cell factory for the sustainable production of biofuels, organic acids, terpenoids, and specialty chemicals. This ability is bolstered by advances in genetic engineering tools, including CRISPR-Cas systems and modular cloning in both conventional (Saccharomyces cerevisiae) and non-conventional (Yarrowia lipolytica, Rhodotorula toruloides, Candida krusei) yeasts. Additionally, genome-scale metabolic models and machine learning approaches have accelerated efforts to create a broad range of compounds that help reduce dependency on fossil fuels, mitigate climate change, and offer sustainable alternatives to petrochemical-derived counterparts. In this review, we highlight the cutting-edge genetic tools driving yeast metabolic engineering and then explore the diverse applications of yeast-based platforms for producing value-added products. Collectively, this review underscores the pivotal role of yeast biotechnology in efforts to build a sustainable bioeconomy.
酵母已成为一种非常适合可持续生产生物燃料、有机酸、萜类化合物和特殊化学品的微生物细胞工厂。传统酵母(酿酒酵母)和非传统酵母(解脂耶氏酵母、粘红酵母、克鲁斯念珠菌)中基因工程工具的进步,包括CRISPR-Cas系统和模块化克隆,增强了酵母的这种能力。此外,基因组规模的代谢模型和机器学习方法加快了创造多种化合物的进程,这些化合物有助于减少对化石燃料的依赖、缓解气候变化,并为石化衍生产品提供可持续的替代品。在这篇综述中,我们重点介绍了推动酵母代谢工程的前沿基因工具,然后探讨了基于酵母的平台在生产增值产品方面的各种应用。总的来说,这篇综述强调了酵母生物技术在构建可持续生物经济的努力中的关键作用。