J Integr Plant Biol.

• Research Article •    

VmAGP1 hijacks a plant kinase–ATPase cascade to drive self-destructive host acidification

Yinghao Wang1, Keqian Yao1, Mengjie Gao1, Jianyu Li1, Yangguang Meng1, Liangsheng Xu1,2*and Lili Huang1*   

  1. 1. State Key Laboratory for Crop Stress Resistance and High‐Efficiency Production, College of Plant Protection, Northwest A&FUniversity, Yangling 712100, China

    2. Northwest A&F University ShenZhen Research Institute, Shenzhen 518000, China

    *Correspondences: Liangsheng Xu (liangsheng.xu@nwafu.edu.cn); Lili Huang (huanglili@nwafu.edu.cn, Dr. Huang is fully responsible forthe distribution of all materials associated with this article in the manuscript)

  • Received:2025-06-06 Accepted:2025-10-09 Online:2025-11-16
  • Supported by:
    This study was ?nancially supported by the Natural ScienceBasic Research Program of Shaanxi (2024JC‐ZDXM‐13) and the Shenzhen Science and Technology Innovation Program (JCYJ20230807111500002 and JCYJ20220530161405012)

Abstract: Acid-producing fungal pathogens like Valsa mali enhance infectivity by secreting organic acids to acidify host environments, though the underlying cellular pH manipulation mechanisms remain unclear. Here, we identified VmAGP1 as a V. mali virulence factor whose knockout reduces virulence while heterologous expression in apples increases susceptibility. Using yeast two-hybrid (Y2H), bimolecular fluorescence complementation (BiFC), and co-immunoprecipitation (Co-IP) assays, we demonstrated that VmAGP1 interacts with apple receptor-like kinase MdLecRK2, which negatively regulates disease resistance. VmAGP1 promotes MdLecRK2 homo-dimerization, confirmed by luciferase complementation imaging (LCI) and Co-IP. Further studies reveal that MdLecRK2 interacts with and phosphorylates vacuolar H+-ATPase MdVHAc” 1, which also negatively regulates resistance. Flow cytometry shows that VmAGP1 expression lowers intracellular pH in apple protoplasts, further decreased by MdLecRK2/MdVHAc” 1 overexpression. We conclude that V. mali secretes VmAGP1 to induce MdLecRK2 homo-dimerization, triggering a phosphorylation cascade with MdVHAc” 1 that acidifies apple cells to facilitate infection. This study reveals a novel pH manipulation strategy in V. mali pathogenesis, identifying potential targets for controlling Apple Valsa canker.

Key words: acidi?cation, G‐type lectin receptor kinase, vacuolar H+‐ATPase, Vasla mali, VmAGP1

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