Plasma membrane association and resistosome formation of plant helper immune receptors

Author:

Wang Zaiqing1,Liu Xiaoxiao1,Yu Jie1,Yin Shuining1ORCID,Cai Wenjuan1ORCID,Kim Nak Hyun23,El Kasmi Farid4ORCID,Dangl Jeffery L.23ORCID,Wan Li1ORCID

Affiliation:

1. National Key Laboratory of Plant Molecular Genetics, Chinese Academy of Sciences Center for Excellence in Molecular Plant Sciences, Institute of Plant Physiology and Ecology, Chinese Academy of Sciences, Shanghai 200032, China

2. HHMI, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599

3. Department of Biology, University of North Carolina at Chapel Hill, Chapel Hill, NC 27599

4. Centre for Plant Molecular Biology (ZMBP), University of Tubingen, 72076 Tubingen, Germany

Abstract

Intracellular plant immune receptors, termed NLRs (Nucleotide-binding Leucine-rich repeat Receptors), confer effector-triggered immunity. Sensor NLRs are responsible for pathogen effector recognition. Helper NLRs function downstream of sensor NLRs to transduce signaling and induce cell death and immunity. Activation of sensor NLRs that contain TIR (Toll/interleukin-1receptor) domains generates small molecules that induce an association between a downstream heterodimer signalosome of EDS1 (EnhancedDisease Susceptibility 1)/SAG101 (Senescence-AssociatedGene 101) and the helper NLR of NRG1 (NRequired Gene 1). Autoactive NRG1s oligomerize and form calcium signaling channels largely localized at the plasma membrane (PM). The molecular mechanisms of helper NLR PM association and effector-induced NRG1 oligomerization are not well characterized. We demonstrate that helper NLRs require positively charged residues in their N-terminal domains for phospholipid binding and PM association before and after activation, despite oligomerization and conformational changes that accompany activation. We demonstrate that effector activation of a TIR-containing sensor NLR induces NRG1 oligomerization at the PM and that the cytoplasmic pool of EDS1/SAG101 is critical for cell death function. EDS1/SAG101 cannot be detected in the oligomerized NRG1 resistosome, suggesting that additional unknown triggers might be required to induce the dissociation of EDS1/SAG101 from the previously described NRG1/EDS1/SAG101 heterotrimer before subsequent NRG1 oligomerization. Alternatively, the conformational changes resulting from NRG1 oligomerization abrogate the interface for EDS1/SAG101 association. Our data provide observations regarding dynamic PM association during helper NLR activation and underpin an updated model for effector-induced NRG1 resistosome formation.

Funder

CAS | BFSE | Key Research Program of Frontier Science, Chinese Academy of Sciences

MOST | National Natural Science Foundation of China

National Science Foundation

Howard Hughes Medical Institute

Deutsche Forschungsgemeinschaft

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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