4.6 Article

PeMetR-mediated sulfur assimilation is essential for virulence and patulin biosynthesis in Penicillium expansum

Journal

ENVIRONMENTAL MICROBIOLOGY
Volume 23, Issue 9, Pages 5555-5568

Publisher

WILEY
DOI: 10.1111/1462-2920.15704

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Funding

  1. National Natural Science Foundation of China [31930086, 32002099, 32072273]
  2. Youth Innovation Promotion Association, CAS [Y201919]
  3. Strategic Priority Research Program of the Chinese Academy of Sciences [XDA26040202]
  4. China Postdoctoral Science Foundation [2020M670523]

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The study highlights the crucial role of the PeMetR gene in sulfur metabolism, virulence, and patulin biosynthesis in Penicillium expansum. PeMetR is essential for sulfur assimilation and its disruption results in loss of virulence and reduced patulin production. Regulation of sulfur assimilation by PeMetR affects growth, infection, and biosynthesis of the mycotoxin patulin in P. expansum.
Penicillium expansum, as the causal agent of blue mould and a main producer of mycotoxin patulin, is a global concern for economic and food safety. To date, the nutritional requirements of the pathogen during infection and patulin biosynthesis are poorly understood. Here, we genetically characterized the role of the bZIP transcription factor PeMetR in sulfur metabolism, virulence and patulin biosynthesis of P. expansum. The PeMetR regulator is crucial for normal germination and growth on inorganic S-sources but dispensable for utilization of organic S-sources. Accordingly, it is involved in regulating the expression of genes in sulfur assimilation pathway rather than methionine metabolic processes. Disruption of PeMetR resulted in a complete loss of virulence on various fruits. Additionally, the mutant showed a remarkably reduced ability to produce patulin. Exogenous methionine could partially or completely rescue the impaired phenotypes of the mutant. Inactivation of the sulfur assimilation pathway genes, PesA, PesB, PesC, PesF, generated growth, virulence and patulin production defects similar to those of Delta PeMetR. Overall, our study provides evidence that PeMetR-mediated sulfur assimilation is essential for growth and infection and shows for the first time that regulation of sulfur assimilation affects biosynthesis of an important mycotoxin patulin in P. expansum.

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