A highly differentiated region of wheat chromosome 7AL encodes a Pm1a immune receptor that recognizes its corresponding AvrPm1a effector from Blumeria graminis.

Tim Hewitt, Marion C Müller, István Molnár, Martin Mascher, Kateřina Holušová, Hana Šimková, Lukas Kunz, Jianping Zhang, Jianbo Li, Dhara Bhatt, Raghvendra Sharma, Seraina Schudel, Guotai Yu, Burkhard Steuernagel, Sambasivam Periyannan, Brande Wulff, Mick Ayliffe, Robert McIntosh, Beat Keller, Evans Lagudah, Peng Zhang

Journal: The New phytologist 2021;229(5):2812-2826

PMID: 33176001

Abstract

Pm1a, the first powdery mildew resistance gene described in wheat, is part of a complex resistance (R) gene cluster located in a distal region of chromosome 7AL that has suppressed genetic recombination. A nucleotide-binding, leucine-rich repeat (NLR) immune receptor gene was isolated using mutagenesis and R gene enrichment sequencing (MutRenSeq). Stable transformation confirmed Pm1a identity which induced a strong resistance phenotype in transgenic plants upon challenge with avirulent Blumeria graminis (wheat powdery mildew) pathogens. A high-density genetic map of a B. graminis family segregating for Pm1a avirulence combined with pathogen genome resequencing and RNA sequencing (RNAseq) identified AvrPm1a effector gene candidates. In planta expression identified an effector, with an N terminal Y/FxC motif, that induced a strong hypersensitive response when co-expressed with Pm1a in Nicotiana benthamiana. Single chromosome enrichment sequencing (ChromSeq) and assembly of chromosome 7A suggested that suppressed recombination around the Pm1a region was due to a rearrangement involving chromosomes 7A, 7B and 7D. The cloning of Pm1a and its identification in a highly rearranged region of chromosome 7A provides insight into the role of chromosomal rearrangements in the evolution of this complex resistance cluster.

© 2020 The Authors New Phytologist © 2020 New Phytologist Foundation.

Address: Agriculture & Food, Commonwealth Scientific & Industrial Research Organization, GPO Box 1700, Canberra, ACT, 2601, Australia.; School of Life and Environmental Sciences, Plant Breeding Institute, University of Sydney, 107 Cobbitty Road, Cobbitty, NSW, 2570, Australia.; Department of Plant and Microbial Biology, University of Zurich, Zollikerstrasse 107, Zürich, 8008, Switzerland.; Centre of the Region Haná for Biotechnological and Agricultural Research, Institute of Experimental Botany of the Czech Academy of Sciences, Šlechtitelů 31, Olomouc, 779 00, Czech Republic.; OT Gatersleben, Leibniz Institute of Plant Genetics and Crop Plant Research, Corrensstr. 3, Stadt Seeland, D-06466, Germany.; Agriculture & Food, Commonwealth Scientific & Industrial Research Organization, GPO Box 1700, Canberra, ACT, 2601, Australia.; School of Life and Environmental Sciences, Plant Breeding Institute, University of Sydney, 107 Cobbitty Road, Cobbitty, NSW, 2570, Australia.; John Innes Centre, Norwich,, NR4 7UH, UK.
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