DNA methylation-dependent epigenetic regulation of Verticillium dahliae virulence in plants
- aBIOTECH. 2023 Sep 20;4(3):185-201. doi: 10.1007/s42994-023-00117-5.
- 1. Shanghai Center for Plant Stress Biology and Center of Excellence in Molecular Plant Sciences, Chinese Academy of Science, Shanghai, 200032 China.
- 2. University of Chinese Academy of Sciences, Beijing, 100049 China.
- 3. College of Life Sciences, Anhui Normal University, Wuhu, 241000 China.
- 4. State Key Laboratory of Plant Genomics, Institute of Microbiology, Chinese Academy of Sciences, Beijing, 100101 China.
- 5. Qilu Zhongke Academy of Modern Microbiology Technology, Jinan, 250000 China.
- # Contributed equally.
As a conserved epigenetic MARK, DNA cytosine methylation, at the 5' position (5-mC), plays important roles in multiple biological processes, including plant immunity. However, the involvement of DNA methylation in the determinants of virulence of phytopathogenic fungi remains elusive. In this study, we profiled the DNA methylation patterns of the phytopathogenic fungus Verticillium dahliae, one of the major causal pathogens of Verticillium wilt disease that causes great losses in many crops, and explored its contribution in Fungal pathogenicity. We reveal that DNA methylation modification is present in V. dahliae and is required for its full virulence in host Plants. The major Enzymes responsible for the establishment of DNA methylation in V. dahliae were identified. We provided evidence that DNA methyltransferase-mediated establishment of DNA methylation pattern positively regulates Fungal virulence, mainly through repressing a conserved protein kinase VdRim15-mediated CA2+ signaling and ROS production, which is essential for the penetration activity of V. dahliae. In addition, we further demonstrated that histone H3 lysine 9 trimethylation (H3K9me3), another heterochromatin marker that is closely associated with 5-mC in eukaryotes, also participates in the regulation of V. dahliae pathogenicity, through a similar mechanism. More importantly, DNA Methyltransferase genes VdRid, VdDnmt5, as well as H3K9me3 methyltransferase genes, were greatly induced during the early Infection phase, implying that a dynamic regulation of 5-mC and H3K9me3 homeostasis is required for an efficient Infection. Collectively, our findings uncover an epigenetic mechanism in the regulation of phytopathogenic Fungal virulence.
Supplementary information: The online version contains supplementary material available at 10.1007/s42994-023-00117-5.
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Cat. No.Product NameDescriptionTargetResearch Area
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target: Fluorescent DyeResearch Areas: Others