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High temperature enhances the ability of Trichoderma asperellum to infect Pleurotus ostreatus mycelia
Zhiheng Qiu1,2, Xiangli Wu1,2, Jinxia Zhang1,2
1Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing, China.
Abstract:
Trichoderma asperellum is one of the species which can be isolated from contaminated Pleurotus ostreatus cultivation substrate with green mold disease. This study focused on the relationship between high temperature and infectivity of T. asperellum to P. ostreatus. Antagonism experiments between T. asperellum and P. ostreatus mycelia revealed that high temperature-treated P. ostreatus mycelia were more easily infected by T. asperellum and covered by conidia. Microscopic observation also showed that P. ostreatus mycelia treated with high temperature could adsorb more T. asperellum conidia. Furthermore, conidia obtained from T. asperellum mycelia grown at 36°C featured higher germination rate compared with that incubated at 28°C. High temperature-treated T. asperellum mycelia can produce conidia in shorter periods, and T. asperellum mycelia were less sensitive to high temperature than P. ostreatus. Deactivated P. ostreatus mycelia can induce T. asperellum cell wall-degrading enzymes (CWDEs) and P. ostreatus mycelia subjected to high temperature showed induced CWDEs more effective than those incubated at 28°C. Moreover, T. asperellum showed higher CWDEs activity at high temperature. In dual cultures, hydrogen peroxide (H2O2) increased after 36°C, and high concentration of H2O2 could significantly inhibit the growth of P. ostreatus mycelia. In summary, our findings indicated for the first time that high temperature can induce a series of mechanisms to enhance infection abilities of T. asperellum to P. ostreatus mycelia and to cause Pleurotus green mold disease.
Insights
High temperatures increase Trichoderma asperellum's ability to infect Pleurotus ostreatus, causing green mold disease. This occurs through enhanced conidia germination, enzyme activity, and hydrogen peroxide production.
Area of Science:
- Mycology
- Plant Pathology
- Agricultural Science
Background:
- Trichoderma asperellum causes green mold disease in Pleurotus ostreatus cultivation.
- The impact of high temperatures on this interaction was previously unclear.
Purpose of the Study:
- To investigate the relationship between high temperature and the infectivity of T. asperellum to P. ostreatus.
- To elucidate the mechanisms by which high temperature enhances T. asperellum pathogenicity.
Main Methods:
- Antagonism experiments between T. asperellum and P. ostreatus mycelia.
- Microscopic observation of mycelial interactions.
- Conidia germination assays at different temperatures.
- Measurement of cell wall-degrading enzymes (CWDEs) activity.
- Hydrogen peroxide (H2O2) level assessment.
Main Results:
- High temperature-treated P. ostreatus mycelia were more susceptible to T. asperellum infection and conidia adsorption.
- Conidia from T. asperellum grown at 36°C showed higher germination rates than those at 28°C.
- High temperatures accelerated conidia production in T. asperellum and increased its CWDEs activity.
- Elevated H2O2 levels were observed at 36°C, inhibiting P. ostreatus growth.
Conclusions:
- High temperature induces mechanisms that enhance T. asperellum infection capabilities.
- This study provides novel insights into the factors contributing to Pleurotus green mold disease.
- Understanding these temperature-dependent interactions is crucial for disease management in mushroom cultivation.
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