Thammaket Jesnipit, Srimongkol Piroonporn, Ekkaphan Paweena, Thitiprasert Sitanan, Niyomsin Sorapat, Chaisuwan Thanyalak, Chirachanchai Suwabun, Thongchul Nuttha
Program in Biotechnology, Faculty of Science, Chulalongkorn University, Bangkok, Thailand.
Institute of Biotechnology and Genetic Engineering, Chulalongkorn University, Phayathai Road, Wangmai, Pathumwan, 10330, Bangkok, Thailand.
Braz J Microbiol. 2024 Sep;55(3):2149-2167. doi: 10.1007/s42770-024-01383-1. Epub 2024 May 22.
This study explored the isolation and screening of an osmotolerant yeast, Wickerhamomyces anomalus BKK11-4, which is proficient in utilizing renewable feedstocks for sugar alcohol production. In batch fermentation with high initial glucose concentrations, W. anomalus BKK11-4 exhibited notable production of glycerol and arabitol. The results of the medium optimization experiments revealed that trace elements, such as HBO, CuSO, FeCl, MnSO, KI, HMoNaO, and ZnSO, did not increase glucose consumption or sugar alcohol production but substantially increased cell biomass. Osmotic stress, which was manipulated by varying initial glucose concentrations, influenced metabolic outcomes. Elevated glucose levels promoted glycerol and arabitol production while decreasing citric acid production. Agitation rates significantly impacted the kinetics, enhancing glucose utilization and metabolite production rates, particularly for glycerol, arabitol, and citric acid. The operational pH dictated the distribution of the end metabolites, with glycerol production slightly reduced at pH 6, while arabitol production remained unaffected. Citric acid production was observed at pH 6 and 7, and acetic acid production was observed at pH 7. Metabolomic analysis using GC/MS identified 29 metabolites, emphasizing the abundance of sugar/sugar alcohols. Heatmaps were generated to depict the variations in metabolite levels under different osmotic stress conditions, highlighting the intricate metabolic dynamics occurring post-glucose uptake, affecting pathways such as the pentose phosphate pathway and glycerolipid metabolism. These insights contribute to the optimization of W. anomalus BKK11-4 as a whole-cell factory for desirable products, demonstrating its potential applicability in sustainable sugar alcohol production from renewable feedstocks.
本研究探索了一种耐渗透压酵母异常威克汉姆酵母BKK11 - 4的分离与筛选,该酵母擅长利用可再生原料生产糖醇。在高初始葡萄糖浓度的分批发酵中,异常威克汉姆酵母BKK11 - 4表现出显著的甘油和阿拉伯糖醇产量。培养基优化实验结果表明,微量元素如HBO、CuSO、FeCl、MnSO、KI、HMoNaO和ZnSO不会增加葡萄糖消耗或糖醇产量,但会显著增加细胞生物量。通过改变初始葡萄糖浓度来控制的渗透压影响代谢结果。较高的葡萄糖水平促进甘油和阿拉伯糖醇的产生,同时降低柠檬酸的产生。搅拌速率显著影响动力学,提高葡萄糖利用率和代谢产物生成速率,特别是对于甘油、阿拉伯糖醇和柠檬酸。操作pH决定了终产物的分布,在pH 6时甘油产量略有降低,而阿拉伯糖醇产量不受影响。在pH 6和7时观察到柠檬酸的产生,在pH 7时观察到乙酸的产生。使用GC/MS进行的代谢组学分析鉴定出29种代谢产物,突出了糖/糖醇的丰富性。生成热图以描绘不同渗透压条件下代谢物水平的变化,突出了葡萄糖摄取后发生的复杂代谢动态,影响了戊糖磷酸途径和甘油脂质代谢等途径。这些见解有助于优化异常威克汉姆酵母BKK11 - 4作为生产理想产品的全细胞工厂,证明了其在利用可再生原料可持续生产糖醇方面的潜在适用性。