Department of Zoology, Faculty of Science, Kasetsart University, Bangkok, Thailand.
Omics Center for Agriculture, Bioresources, Food, and Health, Kasetsart University (OmiKU), Bangkok, Thailand.
Gene. 2024 Sep 25;923:148574. doi: 10.1016/j.gene.2024.148574. Epub 2024 May 18.
Cordyceps militaris is a medicinal entomopathogenic fungus containing valuable biometabolites for pharmaceutical applications. Its genetic inheritance and environmental factors play a crucial role in the production of biomass enriched with cordycepin. While temperature is a crucial controlled parameter for fungal cultivation, its impacts on growth and metabolite biosynthesis remains poorly characterized. This study aimed to investigate the metabolic responses and cordycepin production of C. militaris strain TBRC6039 under various temperature conditions through transcriptome analysis. Among 9599 expressed genes, 576 genes were significantly differentially expressed at culture temperatures of 15 and 25 °C. The changes in the transcriptional responses induced by these temperatures were found in several metabolisms involved in nutrient assimilation and energy source, including amino acids metabolism (e.g., glycine, serine and threonine metabolism) and lipid metabolism (e.g., biosynthesis of unsaturated fatty acids and steroid biosynthesis). At the lower temperature (15 °C), the biosynthetic pathways of lipids, specifically ergosterol and squalene, were the target for maintaining membrane function by transcriptional upregulation. Our study revealed the responsive mechanisms of C. militaris in acclimatization to temperature conditions that provide an insight on physiological manipulation for the production of metabolites by C. militaris.
蛹虫草是一种药用昆虫病原真菌,含有有价值的生物代谢产物,可用于制药应用。其遗传继承和环境因素在富含蛹虫草素的生物量生产中起着至关重要的作用。虽然温度是真菌培养的关键控制参数,但它对生长和代谢物生物合成的影响仍未得到很好的描述。本研究旨在通过转录组分析研究不同温度条件下蛹虫草菌株 TBRC6039 的代谢反应和蛹虫草素的生产。在 9599 个表达基因中,576 个基因在 15 和 25°C 的培养温度下差异显著表达。发现这些温度诱导的转录反应变化涉及几个参与营养吸收和能量来源的代谢途径,包括氨基酸代谢(例如甘氨酸、丝氨酸和苏氨酸代谢)和脂质代谢(例如不饱和脂肪酸的生物合成和固醇生物合成)。在较低温度(15°C)下,脂质(特别是麦角固醇和角鲨烯)的生物合成途径被转录上调,以维持膜功能。我们的研究揭示了蛹虫草对温度条件适应的响应机制,为蛹虫草代谢产物的生产提供了生理操作的见解。