Adenylate cyclase Mac1 functions as a cutin monomer receptor to drive appressorium development and infection in Magnaporthe oryzae

The rice blast fungus Magnaporthe oryzae senses plant surface cues, such as cutin monomers, to initiate appressorium formation. Although cutin monomers are known to trigger the cAMP–protein kinase A signaling pathway, their fungal receptor has remained unknown. Here, we identify the adenylate cyclase Mac1 as a direct receptor for cutin monomers in M. oryzae . A 32-amino acid segment (residues 424 to 455) in Mac1’s N terminus is specifically required for its binding to and activation by cutin monomers. Strikingly, Mac1’s subcellular localization dictates its functional response to cutin monomers: when anchored to late endosomes, Mac1 promotes appressorium maturation in a cutin monomer–dependent manner; in contrast, cytosolic Mac1 is inhibited by the same ligand, leading to reduced cAMP accumulation and failed appressorium maturation. We show that both the appressorium-specific membrane protein Pams1 and high intracellular turgor are required for stable Mac1 anchoring to late endosomes. Our findings reveal a spatial regulatory mechanism whereby a single chemical signal elicits opposing cellular responses depending on receptor localization during appressorium development in M. oryzae . This work resolves a long-standing question in M. oryzae –plant interactions, establishes a molecular framework for how this pathogen decodes host-derived chemical signals, and advances our mechanistic understanding of fungal pathogenesis.

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Publication Details

Journal
Proceedings of the National Academy of Sciences
Published
2026-09-16
DOI
https://doi.org/10.1073/pnas.2625812123
Primary Topic
Plant Surface Properties and Treatments
Type
article
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article

Adenylate cyclase Mac1 functions as a cutin monomer receptor to drive appressorium development and infection in Magnaporthe oryzae

Chunyue An, Xuetao Shi, Minghua Wu, Jiaoyu Wang et al.
Proceedings of the National Academy of Sciences
Plant Surface Properties and Treatments
article

Adenylate cyclase Mac1 functions as a cutin monomer receptor to drive appressorium development and infection in Magnaporthe oryzae

Chunyue An, Xuetao Shi, Minghua Wu, Jiaoyu Wang, Jianping Lu, Pengyun Huang, Fu‐Cheng Lin, Xiaohong Liu, Xueming Zhu, Jiongyi Yan, Yan Li, Yingying Cai, Hui Li, Qing Wang, Jing Wang
article en

Abstract

The rice blast fungus Magnaporthe oryzae senses plant surface cues, such as cutin monomers, to initiate appressorium formation. Although cutin monomers are known to trigger the cAMP–protein kinase A signaling pathway, their fungal receptor has remained unknown. Here, we identify the adenylate cyclase Mac1 as a direct receptor for cutin monomers in M. oryzae . A 32-amino acid segment (residues 424 to 455) in Mac1’s N terminus is specifically required for its binding to and activation by cutin monomers. Strikingly, Mac1’s subcellular localization dictates its functional response to cutin monomers: when anchored to late endosomes, Mac1 promotes appressorium maturation in a cutin monomer–dependent manner; in contrast, cytosolic Mac1 is inhibited by the same ligand, leading to reduced cAMP accumulation and failed appressorium maturation. We show that both the appressorium-specific membrane protein Pams1 and high intracellular turgor are required for stable Mac1 anchoring to late endosomes. Our findings reveal a spatial regulatory mechanism whereby a single chemical signal elicits opposing cellular responses depending on receptor localization during appressorium development in M. oryzae . This work resolves a long-standing question in M. oryzae –plant interactions, establishes a molecular framework for how this pathogen decodes host-derived chemical signals, and advances our mechanistic understanding of fungal pathogenesis.

Proceedings of the National Academy of SciencesVol. 123(38)
Linyi University (CN), Czech Academy of Sciences, Institute of Biotechnology (CZ), ZheJiang Academy of Agricultural Sciences (CN), China National Rice Research Institute (CN), Zhejiang University (CN)
Life in Land
Openalex Percentile: Top 13%
Plant Surface Properties and Treatments
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