ArticleeLife2024
Allosteric activation of the co-receptor BAK1 by the EFR receptor kinase initiates immune signaling.
Article in eLife, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 16 papers.
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Who cites it
16 citing papers in PubMed.
- Mechanisms and balanced regulation of plant immunity.Nature reviews. Molecular cell biology · 2026Review
- VqLecRKV.4 and VqBAK1 Modulate Grapevine Resistance to Powdery Mildew by Regulating Dynamic Balance of ROS.Plant biotechnology journal · 2026Article
- Comparative transcriptome analysis identifies key players associated with downy mildew resistance in foxtail millet variety JG21 and its resistant mutant rdm12.BMC plant biology · 2026Article
- Epibrassinolide seed priming alleviates alkaline stress by enhancing antioxidant defense in dragonhead plants.Scientific reports · 2025Article
- Orchestration of plant PRR- and NLR-mediated immunity: Protein kinases and beyond.Molecular cell · 2025Review
- Reverse engineering of the pattern recognition receptor FLS2 reveals key design principles of broader recognition spectra against evading flg22 epitopes.Nature plants · 2025Article
- Differential phosphorylation of receptor kinase SlLYK4 mediates immune responses to bacterial and fungal pathogens in tomato.Science advances · 2025Article
- The Medicago truncatula LYR4 intracellular domain serves as a scaffold in immunity signaling independent of its phosphorylation activity.The New phytologist · 2025Article
- Biological functionality of non-functional protein kinases.Journal of experimental botany · 2025Article
- Catalytically inactive subgroup VIII receptor-like cytoplasmic kinases regulate the immune-triggered oxidative burst in Arabidopsis thaliana.Journal of experimental botany · 2025Article
- Early detection of fungal infection of Arabidopsis and brassica by Raman spectroscopy.Frontiers in plant science · 2025Article
- Arabidopsis WALL-ASSOCIATED KINASES are not required for oligogalacturonide-induced signaling and immunity.The Plant cell · 2024Article
- A conserved juxtamembrane motif in plant NFR5 receptors is essential for root nodule symbiosis.Proceedings of the National Academy of Sciences of the United States of America · 2024Article
- Allosteric activation of the co-receptor BAK1 by the EFR receptor kinase initiates immune signaling.eLife · 2024Article
- Receptor-like cytoplasmic kinases of different subfamilies differentially regulate SOBIR1/BAK1-mediated immune responses in Nicotiana benthamiana.Nature communications · 2024Article
- A large-scale screening identifies receptor-like kinases with common features in kinase domains that are potentially related to disease resistance in planta.Frontiers in plant science · 2024Article
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5 authors.
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Abstract
Transmembrane signaling by plant receptor kinases (RKs) has long been thought to involve reciprocal trans-phosphorylation of their intracellular kinase domains. The fact that many of these are pseudokinase domains, however, suggests that additional mechanisms must govern RK signaling activation. Non-catalytic signaling mechanisms of protein kinase domains have been described in metazoans, but information is scarce for plants. Recently, a non-catalytic function was reported for the leucine-rich repeat (LRR)-RK subfamily XIIa member EFR (elongation factor Tu receptor) and phosphorylation-dependent conformational changes were proposed to regulate signaling of RKs with non-RD kinase domains. Here, using EFR as a model, we describe a non-catalytic activation mechanism for LRR-RKs with non-RD kinase domains. EFR is an active kinase, but a kinase-dead variant retains the ability to enhance catalytic activity of its co-receptor kinase BAK1/SERK3 (brassinosteroid insensitive 1-associated kinase 1/somatic embryogenesis receptor kinase 3). Applying hydrogen-deuterium exchange mass spectrometry (HDX-MS) analysis and designing homology-based intragenic suppressor mutations, we provide evidence that the EFR kinase domain must adopt its active conformation in order to activate BAK1 allosterically, likely by supporting αC-helix positioning in BAK1. Our results suggest a conformational toggle model for signaling, in which BAK1 first phosphorylates EFR in the activation loop to stabilize its active conformation, allowing EFR in turn to allosterically activate BAK1.
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