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Published on: March 15, 2024
Autophagic regulation of ferroportin 1 induces developmental ferroptosis in rice blast
Ruhui Long1, Meiling Liang2, Qing Shen3
1State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Guangdong Province Key Laboratory of Microbial Signals and Disease Control, Integrative Microbiology Research Centre, South China Agricultural University, Guangzhou, China.
Abstract:
The rice blast fungus, Magnaporthe oryzae, imposes a great threat to global food security. Autophagic cell death of conidium is essential for appressorium-mediated host invasion during pathogenesis. Our recent study revealed that ferroptosis, potentially regulated by macroautophagy/autophagy, is responsible for M. oryzae conidial death during appressorium formation and maturation. Here, we characterized the role of the iron exporter MoFpn1 (ferroportin 1) and showed that its loss led to increased intracellular iron levels, accelerated conidial death, and reduced sensitivity to liproxstatin-1, suggesting that MoFpn1 negatively regulates ferroptosis as an iron exporter in M. oryzae. In conidia, MoFpn1-mCherry fusion protein localized on punctate/vesicular organelles, largely overlapping with CMAC-stained vacuoles, and is subject to regulation by iron availability and autophagy. MoFpn1 was associated with Atg8, based on yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) assays. MoFpn1-mCherry partially colocalized with GFP-Atg8-tagged autophagosomes or autophagic vacuoles in developing conidia. Upon appressorium formation, MoFpn1-mCherry localized to the plasma membrane of appressoria. In mature appressorium, plasma membrane-localized MoFpn1-mCherry transferred to the vacuolar lumen. MoFpn1 also directly interacted with components of the vesicular sorting complex, including the vacuolar SNARE Vam7 that mediates autophagosome-vacuole fusion. Individual deletion of ATG8 or VAM7 resulted in mislocalization of MoFpn1-mCherry to the vacuolar membrane or multivesicular bodies (MVBs) instead of the vacuolar lumen, under autophagy inducing conditions, or remained on the plasma membrane of the mature appressorium. Overall, our study demonstrates that regulation of the intracellular level of iron by Atg8- and Vam7-mediated autophagy-dependent degradation of MoFpn1 is crucial for conidial death and pathogenicity.Abbreviations: BiFC: bimolecular fluorescence complementation; CMAC: 7-amino-4-chloromethylcoumarin; Fpn1: ferroportin 1; Lip-1: liproxstatin-1; MDA: malondialdehyde; MVBs: multivesicular bodies; SNARE: soluble NSF attachment protein receptor; Y2H: yeast two-hybrid.
Insights
The rice blast fungus uses ferroptosis for conidial death, regulated by the iron exporter MoFpn1. Autophagy-mediated degradation of MoFpn1 controls iron levels, impacting pathogenicity and host invasion.
Area of Science:
- Mycology
- Plant Pathology
- Cell Biology
Background:
- Rice blast fungus (Magnaporthe oryzae) poses a significant threat to global food security.
- Autophagic cell death of conidia is critical for appressorium-mediated host invasion.
- Ferroptosis, regulated by autophagy, is implicated in M. oryzae conidial death.
Purpose of the Study:
- To characterize the role of the iron exporter MoFpn1 in M. oryzae ferroptosis and pathogenicity.
- To investigate the regulation of MoFpn1 by autophagy and its localization during conidial and appressorial development.
Main Methods:
- Yeast two-hybrid (Y2H) and bimolecular fluorescence complementation (BiFC) assays to study protein interactions.
- Fluorescence microscopy to track MoFpn1 localization in conidia and appressoria.
- Gene deletion studies (ATG8, VAM7) to assess their impact on MoFpn1 localization and function.
Main Results:
- Loss of MoFpn1 increased intracellular iron, accelerated conidial death, and reduced sensitivity to liproxstatin-1.
- MoFpn1 localized to punctate/vesicular organelles, vacuoles, and the plasma membrane of appressoria.
- Autophagy components (Atg8, Vam7) mediated MoFpn1 degradation into the vacuolar lumen, crucial for pathogenicity.
Conclusions:
- MoFpn1 negatively regulates ferroptosis by exporting iron in M. oryzae.
- Autophagy-dependent degradation of MoFpn1 via Atg8 and Vam7 is essential for controlling iron levels, conidial death, and pathogenicity.
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