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Yu, F.-Y.

Publications and source records attributed to Yu, F.-Y..

2 recordsLinked to original sources

The plant immune receptor LORE binds agonistic and antagonistic 3-hydroxy fatty acid ligands via a dynamic loop in its G-type lectin domain

The Arabidopsis thaliana S-domain receptor kinase LORE senses bacterial medium-chain 3-hydroxy fatty acids (mc-3-OH-FAs) as microbe-associated molecular patterns to activate pattern-triggered immunity. How LORE recognises these fatty acid ligands at the molecular level remains unknown. Here, we combined protein structure prediction, protein-ligand interaction modelling and molecular dynamics (MD) simulations with ligand-binding assays using chimeric and mutant receptor ectodomains, and functional analysis of receptor activation to characterise the mc-3-OH-FA binding mechanism. Domain-swap experiments between LORE and its non-binding paralog AtSD1-23 identify the lectin 2 (L2) domain as the ligand-binding domain. Mutational analysis and reverse engineering confirm a hydrophobic pocket in the L2 core as the primary ligand-binding site. Multiple walker Supervised MD (mwSuMD) simulations reveal that the acyl tail enters the pocket first, whilst polar interactions between the headgroup and a flexible L2 loop guide and stabilise the bound state. In support of this model, 3-OH-C10:0 analogues with bulky headgroup modifications dock into the pocket but act as antagonists, presumably by preventing the loop from adopting the conformation required for signalling. Together, these data suggest that the flexible L2 loop has multiple functions: it acts as a dynamic gate regulating pocket access, provides essential anchoring points once the ligand is bound, and contributes to receptor activation. These findings provide a mechanistic framework for immunogenic mc-3-OH-FA sensing by LORE.

plant biology↗

Diversification of ligand preference in conserved Brassicaceae LORE immune receptors matches proteobacterial 3-hydroxy fatty acid profiles

Pattern recognition receptors are often conserved across plant lineages, yet how ligand sensing diversifies during evolution remains poorly understood. The receptor kinase LORE mediates Arabidopsis thaliana immune responses to bacterial medium-chain 3-hydroxy fatty acids (mc-3-OH-FAs), but its distribution and functional variation across Brassicaceae remain largely unexplored. We combined phylogenetic analysis, species-wide immune profiling, ligand-binding assays, heterologous functional testing, and A. thaliana lore-1 complementation to define LORE diversification across Brassicaceae. LORE orthologs with conserved 3-OH-C10:0 binding are present in all major Brassicaceae lineages, including the basal lineage. Functional complementation confirmed mc-3-OH-FA-sensing capacity in orthologs spanning all four lineages. By contrast, chain-length preference profiles among mc-3-OH-FAs varied between species and orthologs, ranging from narrow 3-OH-C10:0-dominated profiles to broader profiles with comparable sensitivity to 3-OH-C10:0 and 3-OH-C12:0. 3-OH-FA profiling of a diverse collection of plant-associated bacteria revealed that high levels of mc-3-OH-FAs are prevalent in Proteobacteria, and that the range of mc-3-OH-FA chain lengths produced corresponds to the chain-length preferences of Brassicaceae LORE receptors. Our results establish LORE as a Brassicaceae-restricted pattern recognition receptor with conserved mc-3-OH-FA sensing but diversified chain-length preferences, and provide an evolutionary framework for studying how ligand preference can diversify within a biologically relevant ligand spectrum while core receptor function is maintained.

plant biology↗