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April 25, 2026Molecular Cell5 citationsOpen Access

A phosphorelay circuit drives extracellular alkalinization in receptor kinase-mediated immune and cell-wall damage signaling

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KZKeran ZhaiUniversity of ZurichPDPaul DerbyshireUniversity of East AngliaSZSongyuan ZhangUniversity of Zurich

Key Points

  • This research aims to clarify the mechanisms driving extracellular alkalinization in plant immunity and stress signaling.
  • Examination of autoinhibited H+-ATPase disruption for elicitor-induced alkalinization.
  • Analysis of receptor kinase-mediated signaling via BOTRYTIS-INDUCED KINASE 1 (BIK1).
  • Investigation of phosphorylation events affecting H+-ATPase activity.
  • Elicitor-induced alkalinization is essential for immune signaling and cell-wall damage responses.
  • Inhibition of H+-ATPases by BIK1 via phosphorylation significantly enhances receptor kinase activity.
  • Extracellular alkalinization is necessary for disease resistance against pathogens initiated by ligand-receptor interactions.

Abstract

Extracellular alkalinization has long been recognized as a hallmark of plant cell-surface receptor activation, including during pattern-triggered immunity (PTI), yet the mechanisms driving elicitor-induced alkalinization and its role in plant signaling remain unclear. Here, we demonstrate that inhibition of autoinhibited H+-ATPases (AHAs) is required for elicitor-induced extracellular alkalinization. This alkalinization is essential for immune and cell-wall damage signaling mediated by diverse plasma membrane-localized receptor kinases (RKs), likely through modulation of ligand-receptor interactions. Mechanistically, RKs transduce elicitor-triggered signaling via the receptor-like cytoplasmic kinase BOTRYTIS-INDUCED KINASE 1 (BIK1), which inhibits AHA activity by disrupting AHA-GENERAL REGULATORY FACTOR (GRF) interactions through a conserved phosphorylation event. This phosphorylation-driven extracellular alkalinization module is required for disease resistance and cell-wall damage responses initiated by ligand-RK pairs. Our findings uncover a conserved phosphorelay circuit that broadly regulates extracellular alkalinization to coordinate RK signaling, illuminating a general mechanism for RK activation and stress resilience.

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Cite This Study

Zhai et al. (2026) studied this question.

synapsesocial.com/papers/69ec593e88ba6daa22dab2d8https://doi.org/10.1016/j.molcel.2026.03.035
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