共晶体系
低温保存
机制(生物学)
酵母
化学
渗透性休克
转录组
生物化学
酿酒酵母
活力测定
生物
渗透压
细胞
脯氨酸
糖酵解
碳水化合物代谢
新陈代谢
焊剂(冶金)
渗透
细胞内
渗透浓度
基因
细胞代谢
细胞生物学
作者
Hu Rui,Da-Wen Sun,Tian You,Liang Xu,Libin Sun
标识
DOI:10.1016/j.cej.2026.173436
摘要
As a new cryoprotectant, natural deep eutectic solvents (NADESs) have been shown to achieve efficient and safe cryoprotection through excellent thermodynamic characteristics and strong recrystallisation inhibition ability. To further discover the cryoprotection mechanism of NADESs, the transcriptomics of yeast cells cryopreserved by different NADESs were examined. Notably, the PG cryoprotected yeast cells showed the highest viability (Q4: 81.39%) and the earliest regrowth peak (~ 6 h), indicating superior recovery performance. Transcriptomic analysis suggests that NADESs significantly modulate yeast cryotolerance. Differentially expressed genes (DEGs) were predominantly enriched in carbohydrate, amino acid, and fatty acid metabolism. Specifically, key genes involved in glycolysis, such as PCK1 , FBA1 , and ENO1 , were significantly regulated. Furthermore, the up-regulation of osmotic pressure-related genes ( STL1 , FPS1 ) in GF-cryopreserved yeast is consistent with observed osmotic changes. This suggests that proline-containing NADESs may help modulate osmotic pressure, thereby mitigating osmotic damage. Overall, this study supports a more comprehensive understanding of the cryopreservation mechanisms of emerging NADESs. Importantly, while these results support a role for NADES-induced shifts in glycolysis and osmoadaptation, the causality will be further validated in future work using HOG1 Δ, STL1 Δ, and FPS1 Δ strains, as well as pharmacologic MAPK inhibition.
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