Comparative transcriptomics and metabolomics provide insight into degeneration-related physiological mechanisms of Morchella importuna after long-term preservation

IF 5.2 2区 生物学 Microbial Biotechnology Pub Date : 2025-01-30 DOI:10.1111/1751-7915.70045
Ying Chen, Xuelian Cao, Liyuan Xie, Jie Tang, Lixu Liu, Di Wang, Xiang Wu, Tianhai Liu, Yang Yu, Yong Wang, Francis Martin, Weihong Peng, Hao Tan
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Abstract

Ascomycetes fungi are often prone to degeneration. Agricultural production of the prized ascomycete mushroom Morchella importuna (black morel) typically suffers from reduced yield and malformed ascocarps owing to culture degeneration. This study compared M. importuna cultures subjected to five different long-term preservation treatments, using transcriptomics and metabolomics. Avoiding repeated subculturing in combination with nutrient-limited conditions was found to be the most beneficial method for maintaining the fruiting capability of morels. The expression of the gene sets involved in cysteine and methionine metabolism and nucleocytoplasmic transport was upregulated under nutrient-limited and nutrient-rich conditions, respectively. This increased expression was accompanied by differential accumulation of metabolites involved in nucleobase metabolism. Repeated subculturing triggered dissimilar changes in the functional modules under nutrient-rich and nutrient-limited conditions. A diverse set of cellular biochemical processes related to carbon metabolism were altered by repeated subculturing under nutrient-rich conditions, whereas glycerophospholipid and purine metabolism were key functions affected by repeated subculturing under nutrient-limited conditions. Altogether, metabolic alterations related to sulfur-containing amino-acid biosynthesis, DNA repair, and cellular structural maintenance contributed to improved preservation outcomes in terms of morel fruiting capability. Our findings contribute to a more detailed understanding of the molecular mechanisms related to subculturing and fruiting of ascomycete macrofungi after long-term preservation.

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比较转录组学和代谢组学提供了长期保存后与羊肚菌变性相关的生理机制的见解。
子囊菌真菌往往容易退化。农业生产的宝贵子囊菌蘑菇羊肚菌importuna(黑羊肚菌)通常遭受减产和畸形子囊鱼由于培养退化。本研究利用转录组学和代谢组学比较了五种不同长期保存处理下的芽孢杆菌培养物。避免重复传代与营养限制条件相结合是保持羊肚菌结实能力的最有利方法。在营养受限和营养丰富的条件下,参与半胱氨酸和蛋氨酸代谢和核质转运的基因组的表达分别上调。这种增加的表达伴随着参与核碱基代谢的代谢物的差异积累。在营养丰富和营养有限的条件下,反复传代会引起不同功能模块的变化。在营养丰富的条件下,反复传代培养改变了与碳代谢相关的多种细胞生化过程,而在营养有限的条件下,反复传代培养影响了甘油磷脂和嘌呤代谢的关键功能。总之,与含硫氨基酸生物合成、DNA修复和细胞结构维护相关的代谢改变有助于改善羊肚菌结实能力方面的保存结果。我们的发现有助于更详细地了解子囊菌大型真菌在长期保存后继代培养和结果的分子机制。
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来源期刊
Microbial Biotechnology
Microbial Biotechnology Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
11.20
自引率
3.50%
发文量
162
审稿时长
1 months
期刊介绍: Microbial Biotechnology publishes papers of original research reporting significant advances in any aspect of microbial applications, including, but not limited to biotechnologies related to: Green chemistry; Primary metabolites; Food, beverages and supplements; Secondary metabolites and natural products; Pharmaceuticals; Diagnostics; Agriculture; Bioenergy; Biomining, including oil recovery and processing; Bioremediation; Biopolymers, biomaterials; Bionanotechnology; Biosurfactants and bioemulsifiers; Compatible solutes and bioprotectants; Biosensors, monitoring systems, quantitative microbial risk assessment; Technology development; Protein engineering; Functional genomics; Metabolic engineering; Metabolic design; Systems analysis, modelling; Process engineering; Biologically-based analytical methods; Microbially-based strategies in public health; Microbially-based strategies to influence global processes
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