Department of Microbiology, Stellenbosch University, Stellenbosch, South Africa.
Department of Process Engineering, Stellenbosch University, Stellenbosch, South Africa.
Appl Microbiol Biotechnol. 2021 Jun;105(12):4899-4918. doi: 10.1007/s00253-021-11383-y. Epub 2021 Jun 7.
The second-generation (2G) fermentation environment for lignocellulose conversion presents unique challenges to the fermentative organism that do not necessarily exist in other industrial fermentations. While extreme osmotic, heat, and nutrient starvation stresses are observed in sugar- and starch-based fermentation environments, additional pre-treatment-derived inhibitor stress, potentially exacerbated by stresses such as pH and product tolerance, exist in the 2G environment. Furthermore, in a consolidated bioprocessing (CBP) context, the organism is also challenged to secrete enzymes that may themselves lead to unfolded protein response and other stresses. This review will discuss responses of the yeast Saccharomyces cerevisiae to 2G-specific stresses and stress modulation strategies that can be followed to improve yeasts for this application. We also explore published -omics data and discuss relevant rational engineering, reverse engineering, and adaptation strategies, with the view of identifying genes or alleles that will make positive contributions to the overall robustness of 2G industrial strains. KEYPOINTS: • Stress tolerance is a key driver to successful application of yeast strains in biorefineries. • A wealth of data regarding stress responses has been gained through omics studies. • Integration of this knowledge could inform engineering of fit for purpose strains.
第二代(2G)木质纤维素转化发酵环境给发酵微生物带来了独特的挑战,而这些挑战在其他工业发酵中不一定存在。虽然在糖和淀粉基发酵环境中观察到极端的渗透、热和营养饥饿应激,但在 2G 环境中还存在额外的预处理衍生抑制剂应激,这种应激可能会因 pH 值和产物耐受性等因素而加剧。此外,在整合生物加工(CBP)的背景下,微生物还面临着分泌酶的挑战,这些酶本身可能会导致未折叠蛋白反应和其他应激。本文将讨论酵母酿酒酵母对 2G 特异性应激的反应,以及可以采用的应激调节策略,以改善该应用中的酵母。我们还探索了已发表的组学数据,并讨论了相关的合理工程、反向工程和适应策略,以期确定对 2G 工业菌株的整体鲁棒性有积极贡献的基因或等位基因。
应激耐受是酵母菌株在生物炼制厂成功应用的关键驱动因素。
通过组学研究获得了大量关于应激反应的数据。
整合这些知识可以为目标菌株的工程设计提供信息。