State Key Laboratory of Materials-Oriented Chemical Engineering, College of Biotechnology and Pharmaceutical Engineering, Nanjing Tech University, Nanjing, P.R. China.
School of Physical and Mathematical Sciences, Nanjing Tech University, Nanjing, P.R. China.
Crit Rev Biotechnol. 2024 Dec;44(8):1461-1477. doi: 10.1080/07388551.2024.2326677. Epub 2024 Mar 19.
As an important cell factory, industrial yeast has been widely used for the production of compounds ranging from bulk chemicals to complex natural products. However, various adverse conditions including toxic products, extreme pH, and hyperosmosis etc., severely restrict microbial growth and metabolic performance, limiting the fermentation efficiency and diminishing its competitiveness. Therefore, enhancing the tolerance and robustness of yeasts is critical to ensure reliable and sustainable production of metabolites in complex industrial production processes. In this review, we provide a comprehensive review of various strategies for improving the tolerance of yeast cells, including random mutagenesis, system metabolic engineering, and material-mediated immobilization cell technology. It is expected that this review will provide a new perspective to realize the response and intelligent regulation of yeast cells to environmental stresses.
作为一种重要的细胞工厂,工业酵母已被广泛应用于从大宗化学品到复杂天然产物等多种化合物的生产。然而,各种不利条件,包括有毒产物、极端 pH 值和高渗等,严重限制了微生物的生长和代谢性能,降低了发酵效率,削弱了其竞争力。因此,提高酵母的耐受性和健壮性对于确保在复杂工业生产过程中可靠和可持续地生产代谢物至关重要。在本综述中,我们全面回顾了提高酵母细胞耐受性的各种策略,包括随机诱变、系统代谢工程和材料介导的固定化细胞技术。预计这一综述将为实现酵母细胞对环境胁迫的响应和智能调控提供新的视角。