A disulfide bond sculpts the CTNIP4 phytocytokine fold for recognition by the receptor kinase HSL3

Precise ligand recognition by closely related leucine-rich repeat receptor kinases (LRR-RKs) is essential for plants to coordinate immunity, development and environmental adaptation. Here we show how the LRR-RK HSL3/NUT specifically recognizes the folded, disulfide-stabilized CTNIP4/SCREW2 phytocytokine in Arabidopsis. Quantitative binding assays define a minimal CTNIP4 region required for high-affinity HSL3 interaction and signalling activation. A 2.12-Å crystal structure of the HSL3-CTNIP4 complex reveals a unique C-terminal receptor pocket that accommodates the peptide's cyclic architecture through a combination of hydrophobic and polar contacts, a feature absent in the closely related HAE/HSL LRR-RKs. The cyclic CTNIP4 fold further establishes a largely hydrophobic interface that bridges HSL3 to the SERK co-receptor, forming a distinct activation surface. Together, these structural, biochemical and physiological insights uncover a previously unrecognized mechanism of CTNIP4 peptide perception and HSL3 receptor activation, highlighting how subtle architectural variations enable precise ligand selectivity among highly conserved plant receptor kinases.

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Publication Details

Journal
Nature Plants
Published
2026-09-17
DOI
https://doi.org/10.1038/s41477-026-02380-y
Citations
1
Primary Topic
Plant-Microbe Interactions and Immunity
Type
article
Field-Weighted Citation Impact
4.28

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article

A disulfide bond sculpts the CTNIP4 phytocytokine fold for recognition by the receptor kinase HSL3

Julia Santiago, C.Y. Harshith, Pedro Jiménez‐Sandoval, Moutasem Omary et al.
1 citations
Nature Plants
Plant-Microbe Interactions and Immunity
4.28
article

A disulfide bond sculpts the CTNIP4 phytocytokine fold for recognition by the receptor kinase HSL3

Julia Santiago, C.Y. Harshith, Pedro Jiménez‐Sandoval, Moutasem Omary, Caroline Broyart, Cyril Zipfel, Oliver Johanndrees, Kyle W. Bender, Jack Rhodes, Simon Snoeck
article en
1 citations

Abstract

Precise ligand recognition by closely related leucine-rich repeat receptor kinases (LRR-RKs) is essential for plants to coordinate immunity, development and environmental adaptation. Here we show how the LRR-RK HSL3/NUT specifically recognizes the folded, disulfide-stabilized CTNIP4/SCREW2 phytocytokine in Arabidopsis. Quantitative binding assays define a minimal CTNIP4 region required for high-affinity HSL3 interaction and signalling activation. A 2.12-Å crystal structure of the HSL3-CTNIP4 complex reveals a unique C-terminal receptor pocket that accommodates the peptide's cyclic architecture through a combination of hydrophobic and polar contacts, a feature absent in the closely related HAE/HSL LRR-RKs. The cyclic CTNIP4 fold further establishes a largely hydrophobic interface that bridges HSL3 to the SERK co-receptor, forming a distinct activation surface. Together, these structural, biochemical and physiological insights uncover a previously unrecognized mechanism of CTNIP4 peptide perception and HSL3 receptor activation, highlighting how subtle architectural variations enable precise ligand selectivity among highly conserved plant receptor kinases.

Nature PlantsVol. 12(9)
University of East Anglia (GB), University of Zurich (CH), Norwich Research Park (GB), Sainsbury Laboratory (GB), Institute of Plant Biology (HU), Lonza (Switzerland) (CH), University of Lausanne (CH)
National Science Foundation, European Commission, European Synchrotron Radiation Facility, Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung, Université de Lausanne, Universität Zürich, Uniscientia Stiftung, Biotechnology and Biological Sciences Research Council
Life in Land
Openalex Percentile: Top 5%
Plant-Microbe Interactions and Immunity
4.28
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