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WU, C.-H.

Publications and source records attributed to WU, C.-H..

2 recordsLinked to original sources

Conserved core and dynamic periphery NRC helper NLRs underpin immune receptor network evolution across Solanaceae

Plant nucleotide-binding leucine-rich repeat (NLR) proteins function as intracellular immune receptors that detect pathogen-derived signals and activate defense responses. The NRC (NLR required for cell death) receptor network plays central roles in immunity of solanaceous crops, yet its evolutionary diversification across Solanaceae remains poorly understood. Here, we combined comparative phylogenomics and comprehensive functional complementation assays to investigate the evolution and functional diversification of NRC helper NLRs across nine representative species from diverse genera within the Solanaceae. Phylogenetic analyses resolved 11 NRC helper subfamilies with distinct evolutionary trajectories, revealing a conserved core and dynamic periphery within the NLR receptor network. NRC2, NRC3, and NRC4 were broadly conserved across all examined species, whereas other NRC lineages exhibited degrees of presence-absence polymorphisms, lineage-specific expansion, and rapid diversification. Comparative genomic analyses revealed highly dynamic helper-sensor NLR cluster organization, indicating substantial genomic restructuring during Solanaceae evolution. Functional assays further showed that some NRC subfamilies retained broad compatibility with multiple sensor NLRs despite extensive sequence and genomic divergence, whereas other helpers displayed lineage-specific gains and losses of compatibility, revealing extensive rewiring of helper-sensor functional connections. Together, our study provides a cross-Solanaceae evolutionary and functional atlas of the NRC immune receptor network and demonstrates how a conserved core and dynamic periphery of NRC helper NLRs underpin the evolution of immune signaling specificity across Solanaceae.

plant biology↗

Floral Stage Optimization and Immune Evasion Enhance Agrobacterium-Mediated Genome Editing in Arabidopsis

O_LIAgrobacterium-mediated transformation via floral inoculation (AMT-FI) enables genetic engineering without tissue culture. It is widely used in the model plant Arabidopsis thaliana, yet its efficiency and broader applicability remain limited. C_LIO_LIHere, we used a dual-reporter system (RUBY and hygromycin resistance) to identify key floral stages and engineered Agrobacterium strains to evade plant immunity, leading to enhanced transient expression and genome editing. C_LIO_LIWe determined that flowers opened at 6 day-post-inoculation (DPI) are optimal for high transformation efficiency, with nearly 100% of siliques harboring transformants. However, Agrobacterium infection induced ovule abortion, particularly in wild-type (Col-0) plants, whereas efr mutants lacking the EF-Tu receptor (EFR)-mediated pattern-triggered immunity (PTI) showed reduced ovule abortion. Notably, efr mutants exhibited more RUBY-positive ovules and significantly enhanced genome editing efficiency. Two engineered stealth Agrobacterium strains (AS201 and AS202) expressing a chimeric EF- Tu for evading recognition by EFR enhanced both transient transformation and genome editing efficiency. Remarkably, genome-edited T1 plants could be recovered based on phenotype or direct sequencing without the need for antibiotic selection when targeting flowers opened at 6 DPI. C_LIO_LIBy integrating floral stage selection, immune evasion, and Agrobacterium engineering, this study provides a practical and versatile platform to advance plant genome engineering. C_LI

plant biology↗