Functional diversification gave rise to allelic specialization in a rice NLR immune receptor pair

Author:

De la Concepcion Juan Carlos12ORCID,Vega Benjumea Javier23,Bialas Aleksandra4,Terauchi Ryohei56,Kamoun Sophien4ORCID,Banfield Mark J2ORCID

Affiliation:

1. Gregor Mendel Institute of Molecular Plant Biology, Austrian Academy of Sciences

2. Department of Biological Chemistry and Metabolism, John Innes Centre

3. Servicio de Bioquímica-Análisis clínicos, Hospital Universitario Puerta de Hierro

4. The Sainsbury Laboratory, University of East Anglia

5. Division of Genomics and Breeding, Iwate Biotechnology Research Center

6. Laboratory of Crop Evolution, Graduate School of Agriculture

Abstract

Cooperation between receptors from the nucleotide-binding, leucine-rich repeats (NLR) superfamily is important for intracellular activation of immune responses. NLRs can function in pairs that, upon pathogen recognition, trigger hypersensitive cell death and stop pathogen invasion. Natural selection drives specialization of host immune receptors towards an optimal response, whilst keeping a tight regulation of immunity in the absence of pathogens. However, the molecular basis of co-adaptation and specialization between paired NLRs remains largely unknown. Here, we describe functional specialization in alleles of the rice NLR pair Pik that confers resistance to strains of the blast fungus Magnaporthe oryzae harbouring AVR-Pik effectors. We revealed that matching pairs of allelic Pik NLRs mount effective immune responses, whereas mismatched pairs lead to autoimmune phenotypes, a hallmark of hybrid necrosis in both natural and domesticated plant populations. We further showed that allelic specialization is largely underpinned by a single amino acid polymorphism that determines preferential association between matching pairs of Pik NLRs. These results provide a framework for how functionally linked immune receptors undergo co-adaptation to provide an effective and regulated immune response against pathogens. Understanding the molecular constraints that shape paired NLR evolution has implications beyond plant immunity given that hybrid necrosis can drive reproductive isolation.

Funder

Biotechnology and Biological Sciences Research Council

ERC Horizon 2020

John Innes Foundation

Gatsby Charitable Foundation

Erasmus+

Japan Society for the Promotion of Science

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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