HapX-mediated H2B deub1 and SreA-mediated H2A.Z deposition coordinate in fungal iron resistance

Author:

Sun Kewei1,Li Yiqing1,Gai Yunpeng2,Wang Jingrui1,Jian Yunqing1,Liu Xin3,Wu Liang4ORCID,Shim Won-Bo5,Lee Yin-Won6,Ma Zhonghua1ORCID,Haas Hubertus7ORCID,Yin Yanni1ORCID

Affiliation:

1. State Key Laboratory of Rice Biology, the Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Institute of Biotechnology, Zhejiang University , Hangzhou , China

2. School of Grassland Science, Beijing Forestry University , Beijing , China

3. Institute of Food Safety and Nutrition, Jiangsu Academy of Agricultural Sciences , Nanjing , China

4. Institute of Crop Science, Zhejiang University , Hangzhou , China

5. Department of Plant Pathology and Microbiology, Texas A&M University, College Station , USA

6. Department of Agricultural Biotechnology, Seoul National University , Seoul , Korea

7. Instiute of Molecular Biology, Biocenter, Medical University Innsbruck , Innsbruck  A-6020, Austria

Abstract

Abstract Plant pathogens are challenged by host-derived iron starvation or excess during infection, but the mechanism through which pathogens counteract iron stress is unclear. Here, we found that Fusarium graminearum encounters iron excess during the colonization of wheat heads. Deletion of heme activator protein X (FgHapX), siderophore transcription factor A (FgSreA) or both attenuated virulence. Further, we found that FgHapX activates iron storage under iron excess by promoting histone H2B deubiquitination (H2B deub1) at the promoter of the responsible gene. Meanwhile, FgSreA is shown to inhibit genes mediating iron acquisition during iron excess by facilitating the deposition of histone variant H2A.Z and histone 3 lysine 27 trimethylation (H3K27 me3) at the first nucleosome after the transcription start site. In addition, the monothiol glutaredoxin FgGrx4 is responsible for iron sensing and control of the transcriptional activity of FgHapX and FgSreA via modulation of their enrichment at target genes and recruitment of epigenetic regulators, respectively. Taken together, our findings elucidated the molecular mechanisms for adaptation to iron excess mediated by FgHapX and FgSreA during infection in F. graminearum and provide novel insights into regulation of iron homeostasis at the chromatin level in eukaryotes.

Funder

National Key Research and Development Program of China

Special Fund for Public Projects of Zhejiang Province

National Science Foundation

China Agriculture Research System

Fundamental Research Funds for the Central Universities

Publisher

Oxford University Press (OUP)

Subject

Genetics

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