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Rodney, C. A.

Publications and source records attributed to Rodney, C. A..

2 recordsLinked to original sources

A wheat immune receptor pair executes cell death through a helper MLKL

To promote disease resistance, plant nucleotide-binding, leucine-rich repeat (NLR) immune receptors often require paired co-receptors. In many cases, paired NLRs comprise one NLR to perceive effectors (the sensor) and another NLR to execute cell death (the helper). However, NLRs can also pair with sensor kinase fusion protein (KFP) receptors, but whether non-NLR components within such pairs can execute cell death, remains unclear. Here, we investigate the mechanism of an immune receptor pair comprising the wheat NLR Rwt3.6.8 NLR (R3NLR) and an MLKL protein, Rwt3.6.8 associated kinase (R3AK). Using Nicotiana benthamiana transient expression assays we confirmed that both R3NLR and R3AK are required for cell death in response to blast pathogen effectors PWT3, PWT6 or PWT8. Through mutational analysis we show the 4-helical bundle (4HB) domain of R3AK is required to execute cell death and R3AK can be made auto-active by perturbing the kinase catalytic active site. Activation of R3AK is also associated with a shift to a higher oligomeric state. Furthermore, as the NLR R3NLR is not actively involved in the execution of cell death we hypothesise that R3AK acts as a helper. A phylogenetic analysis indicates widespread distribution of this paired configuration in Poales. Together, this study establishes a novel resistance mechanism involving a non-canonical NLR/MLKL system. Significance StatementHere we investigate the mechanism of a novel plant immune receptor pair from wheat, R3NLR/R3AK. A nucleotide-binding, leucine-rich repeat (NLR) receptor and a mixed lineage kinase like (MLKL) protein are both required to mediate resistance to blast pathogen effector proteins PWT3, PWT6 and PWT8. Adopting a mutagenesis approach, we show that the MLKL protein executes cell death through its N-terminal 4-helical bundle domain, and this is associated with a shift to a higher oligomeric state. Mutations of conserved sequence motifs in the NLR support its role as a sensor, although effector interactions have not yet been observed. This study reveals a plant immune receptor pair that functions via a putative NLR sensor paired to a cell death executing MLKL protein.

plant biology↗

Computational design of de novo integrated domains enables rational control of pathogen effector recognition in plant NLR immune receptors.

The rapid evolution of plant pathogens poses a persistent threat to global agricultural sustainability, often outpacing the discovery and deployment of natural disease resistance genes. While bioengineering of plant intracellular immune receptors (NLRs) offers a potential solution, developing bespoke immune recognition remains constrained by the laborious characterisation of natural receptors and plant-pathogen interactions. Here, we describe a programmable framework that leverages generative AI protein design tools, RFdiffusion and ProteinMPNN, to design de novo integrated domains (IDs) against diverse pathogen effectors. By integrating these bespoke binders into the modular rice blast Pik-1/Pik-2 NLR receptor chassis, we successfully engineer recognition of a non-cognate virulence factor (effector) from the Panama disease pathogen, Fusarium oxysporum f. sp. cubense Tropical Race 4. Functional assays in Nicotiana benthamiana demonstrate that these de novo domains facilitate specific effector perception and initiate immune signalling, while structural and biophysical analyses confirm that de novo integrated domains maintain high structural fidelity to the initial designs and associate with their targets via the predicted interaction interfaces. Additionally, our findings provide orthogonal evidence for the role of integrated domains in regulation of NLR signalling, demonstrating integration of de novo IDs can either trigger autoactivity or, in some cases, lead to effector-mediated repression of cell death. By decoupling immune perception from natural evolutionary history through deploying AI-designed sensory domains, this work establishes a design-lead framework for generation of programmable plant immune receptors, providing a new avenue for bioengineering crops against emerging pathogens.

plant biology↗