Serine peptidases and increased amounts of soluble proteins contribute to heat priming of the plant pathogenic fungus Botrytis cinerea

Author:

Zhang Mingzhe1ORCID,Trushina Naomi Kagan1,Lang Tabea12,Hahn Matthias2,Pasmanik-Chor Metsada3,Sharon Amir1ORCID

Affiliation:

1. School of Plant Sciences and Food Security, Tel Aviv University , Tel Aviv, Israel

2. Department of Biology, Technical University of Kaiserslautern , Kaiserslautern, Germany

3. Bioinformatics Unit, Tel Aviv University , Tel Aviv, Israel

Abstract

ABSTRACT Botrytis cinerea causes gray mold disease in leading crop plants. The disease develops only at cool temperatures, but the fungus remains viable in warm climates and can survive periods of extreme heat. We discovered a strong heat priming effect in which the exposure of B. cinerea to moderately high temperatures greatly improves its ability to cope with subsequent, potentially lethal temperature conditions. We showed that priming promotes protein solubility during heat stress and discovered a group of priming-induced serine-type peptidases. Several lines of evidence, including transcriptomics, proteomics, pharmacology, and mutagenesis data, link these peptidases to the B. cinerea priming response, highlighting their important roles in regulating priming-mediated heat adaptation. By imposing a series of sub-lethal temperature pulses that subverted the priming effect, we managed to eliminate the fungus and prevent disease development, demonstrating the potential for developing temperature-based plant protection methods by targeting the fungal heat priming response. IMPORTANCE Priming is a general and important stress adaptation mechanism. Our work highlights the importance of priming in fungal heat adaptation, reveals novel regulators and aspects of heat adaptation mechanisms, and demonstrates the potential of affecting microorganisms, including pathogens through manipulations of the heat adaptation response.

Funder

Israel Science Foundation

China Scholarship Council

Publisher

American Society for Microbiology

Subject

Virology,Microbiology

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