Cao Zhengfei, Wang Tao, He Hui, Li Yuling, Li Xiuzhang
State Key Laboratory of Plateau Ecology and Agriculture, College of Animal Husbandry and Veterinary Sciences, Qinghai University, Xining 810016, China.
J Fungi (Basel). 2025 May 23;11(6):403. doi: 10.3390/jof11060403.
is a medicinal fungus with significant nutritional and utilization value. Temperature is a crucial factor influencing its growth, as temperature changes can impact enzyme activity, metabolite content, and gene expression during fungal cultivation. Currently, there are limited reports on the effects of temperature on the quality of fungal fermentation. This study focuses on and conducts temperature stress culture experiments. The results indicate that the optimal culture temperature range is between 18 and 23 °C, with extreme temperatures negatively affecting the morphology, growth rate, sporulation, and antioxidant systems of the strains. Further metabolomic and transcriptomic analyses revealed that differentially expressed genes (DEGs) and differentially accumulated metabolites (DAMs) were primarily enriched in four metabolic pathways: linoleic acid metabolism, arginine and proline metabolism, and lysine degradation. Many significantly enriched metabolites across various pathways appear to be predominantly regulated by ribosomal and RNA polymerase genes. Furthermore, we cultured mycelium at various temperatures and observed that a significant number of genes and metabolites associated with apoptosis and senescence were expressed at 28 °C. This led to cell damage, excessive energy consumption, and ultimately inhibited mycelial growth. In summary, this study elucidates the response mechanisms of to key metabolic pathways under different temperature growth conditions and explores factors contributing to strain degradation.
是一种具有重要营养和利用价值的药用真菌。温度是影响其生长的关键因素,因为在真菌培养过程中,温度变化会影响酶活性、代谢物含量和基因表达。目前,关于温度对真菌发酵质量影响的报道有限。本研究聚焦于[具体真菌名称未给出]并进行温度胁迫培养实验。结果表明,最佳培养温度范围在18至23°C之间,极端温度会对菌株的形态、生长速率、产孢和抗氧化系统产生负面影响。进一步的代谢组学和转录组学分析表明,差异表达基因(DEGs)和差异积累代谢物(DAMs)主要富集在四个代谢途径中:亚油酸代谢、精氨酸和脯氨酸代谢以及赖氨酸降解。各途径中许多显著富集的代谢物似乎主要受核糖体和RNA聚合酶基因调控。此外,我们在不同温度下培养[具体真菌名称未给出]菌丝体,观察到在28°C时,大量与细胞凋亡和衰老相关的基因和代谢物表达。这导致细胞损伤、能量过度消耗,最终抑制菌丝体生长。总之,本研究阐明了[具体真菌名称未给出]在不同温度生长条件下对关键代谢途径的响应机制,并探索了导致菌株退化的因素。