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Published on: January 13, 2017
Polyketide Synthase Gene Expression in Relation to Chloromonilicin and Melanin Production in Monilinia fructicola
Fang-Yi Yu1, Chiu-Min Chiu1,2,3, Yue-Zhi Lee4
1Department of Plant Pathology, National Chung Hsing University, Taiwan.
Abstract:
Monilinia fructicola is a fungal pathogen of worldwide significance that causes brown rot of stone fruits. There are only few reports related to the production of biologically active polyketides by this pathogen. In this study, we examined an atypical M. fructicola strain TW5-4 that shows strong antimicrobial activity against various plant pathogens. TW5-4 also displays sparse growth in culture, low virulence, and higher levels of melanin compared with its albino mutant, TW5-4WM, and a wild-type strain Mf13-81. Antifungal compounds were extracted from TW5-4 and purified by thin-layer chromatography following visualization with an on-the-chromatogram inhibition assay. The principal antifungal compound was identified by linear ion trap mass spectrometry, high-resolution electro-spray ionization mass spectrometry, and proton nuclear magnetic resonance analyses as the polyketide chloromonilicin. Multiple M. fructicola polyketide synthase (PKS) sequences were then cloned by degenerate PCR and inverse PCR. Sequence analyses support presence of a 10-member PKS gene family in the M. fructicola genome. Analyses of PKS gene expression found no strong correlation between chloromonilicin production in culture and transcript levels of any of the PKS gene family members in mycelium of strains TW5-4, TW5-4WM, and Mf13-81. However, MfPKS12, a homolog of BcPKS12 involved in biosynthesis of 1,8-dihydroxynaphthalene (DHN)-melanin in Botrytis cinerea, was strongly expressed in mycelia of TW5-4 and Mf13-81. An MfPKS12-silenced mutant accumulated significantly less melanin in mycelia, had lower resistance to polyethylene glycol-induced osmotic stress, and displayed reduced virulence on nectarine fruit. The results suggest that DHN-melanin is required for tolerance to osmotic stress and full virulence in M. fructicola.
Insights
Monilinia fructicola produces the antifungal polyketide chloromonilicin. Melanin, synthesized by MfPKS12, is crucial for osmotic stress tolerance and virulence in this significant stone fruit pathogen.
Area of Science:
- Mycology
- Plant Pathology
- Biochemistry
Background:
- Monilinia fructicola causes significant brown rot in stone fruits.
- Limited knowledge exists on biologically active polyketides produced by M. fructicola.
- An atypical strain, TW5-4, exhibits strong antimicrobial activity and altered phenotypic traits.
Purpose of the Study:
- To identify and characterize antifungal compounds from M. fructicola.
- To investigate the polyketide synthase (PKS) gene family in M. fructicola.
- To elucidate the role of melanin biosynthesis in M. fructicola virulence and stress tolerance.
Main Methods:
- Extraction and purification of antifungal compounds using chromatography.
- Identification of compounds via mass spectrometry and NMR.
- Cloning and analysis of PKS gene family members.
- Gene expression analysis and gene silencing (RNA interference).
Main Results:
- The primary antifungal compound was identified as the polyketide chloromonilicin.
- M. fructicola possesses a 10-member PKS gene family.
- MfPKS12, a homolog of BcPKS12, is involved in DHN-melanin biosynthesis.
- MfPKS12 silencing reduced melanin levels, osmotic stress tolerance, and virulence.
Conclusions:
- Chloromonilicin is a novel antifungal polyketide from M. fructicola.
- DHN-melanin biosynthesis, regulated by MfPKS12, is essential for osmotic stress tolerance and full virulence in M. fructicola.
- Understanding these pathways can inform strategies against stone fruit brown rot.
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