The <i>Arabidopsis</i> TIRome informs the design of artificial TIR (Toll/interleukin-1 receptor) domain proteins

A Adam M. Bayless (Department of Biology, Colorado State University) L Lijiang Song M Mitchell Sorbello (The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience) S Sam C. Ogden (Department of Biology, Colorado State University) T Tyler S. Todd (Department of Biology, Colorado State University) A Alice Flint (School of Life Sciences, University of Warwick) N Natsumi Maruta (The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience) J Jedidiah Tulu (Department of Biology, Colorado State University) M Mikhail Drenichev (Engelhardt Institute of Molecular Biology, Russian Academy of Sciences) V Vardis Ntoukakis (School of Life Sciences, University of Warwick) T Thomas Ve (Institute for Biomedicine and Glycomics, Griffith University) M Mehdi Mobli L Li Wan Q Qingli Liu (Seeds Research, Syngenta Crop Protection) J Jeffery L. Dangl B Bostjan Kobe (The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience) M Murray Grant (School of Life Sciences, University of Warwick) M Marc T. Nishimura (Department of Biology, Colorado State University)

Abstract

The TIR (Toll/interleukin-1 receptor) domain is an ancient protein module that functions in immune and cell death responses across the Tree of Life. TIR domains encoded by plants and prokaryotes function as enzymes to produce diverse small molecule immune signals. Plant genomes can encode hundreds of TIR-domain containing proteins—many of which confer important agricultural disease resistance as TIR-NLR (nucleotide-binding, leucine-rich repeat) immune receptors. Despite their importance, how natural variation influences TIR enzymatic output and immunity-associated cell death is largely unexplored. We assayed a complete collection of the TIR domains of Arabidopsis thaliana Col-0 (the “AtTIRome”) to explore variation in TIR metabolite production and cell death signaling. Roughly half of the AtTIRome triggered cell death in transient assays. Artificial TIR proteins designed based on consensus sequences of the AtTIRome’s cell death phenotypic classes revealed polymorphisms controlling variation in TIR cell death elicitation and metabolite production. Structure–function analyses of artificial TIRs revealed that natural variation in the “BB-loop”, a flexible region overlying the catalytic pocket, determines differences in function across Arabidopsis TIR-containing proteins. We further demonstrate that artificial TIRs are functional on an NLR chassis and that BB-loop variation can tune the activity of a natural TIR-NLR protein. These findings shed light on the diversity of TIR outputs and reveal methods to design and engineer TIR-based immune receptors.

Article Details

Volume / Issue Vol. 122, Issue 37
Published September 16, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (18)

A

Adam M. Bayless

Department of Biology, Colorado State University

L

Lijiang Song

M

Mitchell Sorbello

The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience

S

Sam C. Ogden

Department of Biology, Colorado State University

T

Tyler S. Todd

Department of Biology, Colorado State University

A

Alice Flint

School of Life Sciences, University of Warwick

N

Natsumi Maruta

The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience

J

Jedidiah Tulu

Department of Biology, Colorado State University

M

Mikhail Drenichev

Engelhardt Institute of Molecular Biology, Russian Academy of Sciences

V

Vardis Ntoukakis

School of Life Sciences, University of Warwick

T

Thomas Ve

Institute for Biomedicine and Glycomics, Griffith University

M

Mehdi Mobli

L

Li Wan

Q

Qingli Liu

Seeds Research, Syngenta Crop Protection

J

Jeffery L. Dangl

B

Bostjan Kobe

The University of Queensland, School of Chemistry and Molecular Biosciences, Australian Infectious Diseases Research Centre and Institute for Molecular Bioscience

M

Murray Grant

School of Life Sciences, University of Warwick

M

Marc T. Nishimura

Department of Biology, Colorado State University