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Isolation and Selection of Entomopathogenic Fungi from Soil Samples and Evaluation of Fungal Virulence against Insect Pests
Published on: September 28, 2021
Transcriptomic Data Suggest Pathways Involved in Conidiation Degeneration and Its Rejuvenate by Passage in the
Wei Ge1, Dianguang Xiong1, Jinzhu Xu2
1Beijing Key Laboratory for Forest Pest Control, Beijing Forestry University, Beijing 100083, China.
Abstract:
Metarhizium lepidiotae is an important entomopathogenic fungus with substantial agricultural value. However, prolonged subculturing often leads to phenotypic degeneration, including reduced conidiation and impaired metabolic activity, while the underlying molecular mechanisms remain poorly understood. Elucidating these mechanisms is essential for maintaining strain vitality and ensuring biocontrol efficacy. In this study, we found that M. lepidiotae exhibited a pronounced decline in conidiation during long-term serial subculturing. However, this degenerative phenotype could be effectively reversed by passage through insect hosts, leading to strain rejuvenation. Subsequently, comparative transcriptomic analyses were performed on the original strain (XMC-Y), the degenerated strain (XMC-T), and the rejuvenated strain (XMC-F) at 7 and 18 days of cultivation. Our results revealed that XMC-T initially compensates for defects in basal metabolism and signaling pathways by enhancing translational capacity, but progressively exhibits a profound collapse of RNA-processing systems and the translational machinery at later cultivation stages. Moreover, the significant downregulation of the peroxisome pathway indicates impaired peroxisome biogenesis and compromised reactive oxygen species (ROS) metabolic capacity, suggesting a weakened antioxidant defense and a potential increase in oxidative stress. Collectively, these findings indicate that disruptions in RNA regulatory networks and oxidative homeostasis are strongly associated with M. lepidiotae degeneration. This study provides important theoretical insights for maintaining strain stability during large-scale production and agricultural biocontrol applications.
Insights
Long-term cultivation of the entomopathogenic fungus Metarhizium lepidiotae causes degeneration. Strain rejuvenation occurs through insect passage, revealing disruptions in RNA processing and oxidative stress linked to this decline.
Area of Science:
- Agricultural Science
- Mycology
- Molecular Biology
Background:
- Metarhizium lepidiotae is a valuable entomopathogenic fungus.
- Prolonged subculturing leads to phenotypic degeneration, impacting agricultural applications.
- Molecular mechanisms of degeneration are poorly understood.
Purpose of the Study:
- Investigate molecular mechanisms of M. lepidiotae degeneration during subculturing.
- Identify factors contributing to reduced conidiation and metabolic activity.
- Explore methods for strain rejuvenation and stability.
Main Methods:
- Comparative transcriptomic analysis of original, degenerated, and rejuvenated M. lepidiotae strains.
- Cultivation and insect passage for strain manipulation.
- Analysis of gene expression related to metabolism, RNA processing, and oxidative stress.
Main Results:
- Degenerated strains show initial compensation via enhanced translation, followed by collapse of RNA processing and translational machinery.
- Downregulation of the peroxisome pathway suggests impaired ROS metabolism and weakened antioxidant defense.
- Insect passage effectively rejuvenated degenerated strains.
Conclusions:
- Disruptions in RNA regulatory networks and oxidative homeostasis are key drivers of M. lepidiotae degeneration.
- Understanding these mechanisms is crucial for maintaining strain stability in biocontrol.
- Findings offer theoretical insights for large-scale fungal production and application.
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