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Widrig, V.

Publications and source records attributed to Widrig, V..

8 recordsLinked to original sources

An HMA-like integrated domain in the wheat tandem kinase WTK4 recognises an RNase-like pathogen effector

Proteins with a tandem kinase structure have recently emerged as new players in race-specific resistance in cereal crops. However, the molecular understanding of these novel immune receptors resistance mechanisms is limited by the lack of knowledge about the pathogen effectors that they recognise. In this work, we identify AvrWTK4, the wheat powdery mildew RNase-like effector recognised by the wheat tandem kinase immune receptor WTK4, through a combination of bi-parental genetic mapping and mutagenesis. We demonstrate that mutations in the AvrWTK4 gene or a reduction of its expression lead to virulence on WTK4. Transfection of AvrWTK4 specifically induced cell death in WTK4-containing Aegilops tauschii protoplasts. The avirulent AvrWTK4 variant interacts more strongly than the virulent variant with the N-terminal heavy metal-associated (HMA)-like domain of WTK4. These findings further highlight that integrated domains in tandem kinase proteins serve as decoys for pathogen effectors, which could be leveraged to design novel recognition specificities.

molecular biology↗

Virulence on Pm4 kinase-based resistance is determined by two divergent wheat powdery mildew effectors

The wheat resistance gene Pm4 encodes a kinase fusion protein and has gained particular attention as it confers race-specific resistance against two major wheat pathogens: powdery mildew and blast. Here, we describe the identification of AvrPm4, the mildew avirulence effector recognised by Pm4, using UV- mutagenesis, and its functional validation in wheat protoplasts. We show that AvrPm4 directly interacts with and is phosphorylated by Pm4. Using genetic association and QTL mapping, we furthermore demonstrate that evasion of Pm4 resistance by virulent mildew isolates relies on a second fungal component, SvrPm4, which suppresses AvrPm4-induced cell death. Surprisingly, SvrPm4 was previously described as AvrPm1a. We show that SvrPm4, but not its inactive variant svrPm4, is recognised by the NLR immune receptor Pm1a. These multiple roles of a single effector provide a new perspective on fungal (a)virulence proteins and their combinatorial interactions with different types of immune receptors.

genetics↗

Chitin soil amendment triggers systemic plant disease resistance through enhanced pattern-triggered immunity

Chitin triggers localised and systemic plant immune responses, making it a promising treatment for sustainable disease resistance. However, the precise molecular mechanisms underlying chitin-induced systemic effects in plants remain unknown. In this study, we investigated the effects of soil amendment with crab chitin flakes (hereafter chitin) on pattern-triggered immunity (PTI) and systemic disease resistance in various plant species. We found that soil amendment with chitin potentiates PTI and disease resistance against the bacterial pathogen Pseudomonas syringae pv. tomato DC3000 in lettuce, tomato, and Arabidopsis as well as against the fungal pathogen Blumeria graminis causing powdery mildew in wheat. Using micrografting in Arabidopsis, we demonstrated that this systemic effect is dependent on active chitin perception in the roots. We also showed that induced systemic resistance (ISR) and pattern-recognition receptors (PRRs)/co-receptors, but not systemic acquired resistance (SAR), are involved in the systemic effects triggered by chitin soil amendment. This systemic effect correlated with the transcriptional up-regulation of key PTI components in distal leaves upon chitin soil amendment. Notably, chitin-triggered systemic immunity was independent of microbes present in soil or chitin flakes. Together, these findings contribute to a better understanding of chitin-triggered systemic immunity, from active chitin perception in roots to the potentiation of PTI in the leaves, ultimately priming plants to mount enhanced defense responses against pathogen attacks. Our study provides valuable insights into the molecular mechanisms of chitin soil amendment and resulting induced immunity, and highlights its potential use for sustainable crop protection strategies.

plant biology↗

k-mer-based GWAS in a wheat collection reveals novel and diverse sources of powdery mildew resistance

BackgroundWheat landraces and cultivars stored in gene banks worldwide represent a valuable source of genetic diversity for discovering genes critical for agriculture, which is increasingly constrained by climate change and inputs reduction. We assembled and genotyped, using DArTseq technology, a panel of 461 accessions representative of the genetic diversity of Swiss wheat material. The collection was evaluated for powdery mildew resistance under field conditions for two consecutive years and at the seedling stage with 10 different wheat powdery mildew isolates. ResultsTo identify the genetic basis of mildew resistance in wheat, we developed a k-mer-based GWAS approach using multiple fully-assembled genomes including Triticum aestivum as well as four progenitor genomes. Compared to approaches based on single reference genomes, we unambiguously mapped an additional 25% resistance-associated k-mers. Our approach outperformed SNP-based GWAS in terms of number of loci identified and precision of mapping. In total, we detected 34 (Pm) powdery mildew resistance loci, including seven previously-described and more importantly 27 novel loci active at the seedling stage. Furthermore, we identified a region associated with adult plant resistance, which was not detected with SNP-based approaches. ConclusionsThe described non-reference-based approach highlights the potential of integrating multiple wheat reference genomes with k-mer GWAS to harness the untapped genetic diversity present in germplasm collections.

genomics↗

The wheat NLR protein PM3b localizes to endoplasmic reticulum-plasma membrane contact sites and interacts with AVRPM3b2/c2 through its LRR domain.

Plant nucleotide-binding leucine-rich repeat (NLR) proteins are intracellular immune receptors that directly or indirectly perceive pathogen derived effector proteins to induce an immune response. NLRs display diverse sub-cellular localizations, which are associated with the capacity of the immune receptor to confer disease resistance and recognize its corresponding avirulence effector. In wheat, the NLR PM3b recognizes the wheat powdery mildew effector AVRPM3b2/c2 and we examined the molecular mechanism underlying this recognition. We show that PM3b and other PM3 variants localize to endoplasmic reticulum (ER)-plasma membrane (PM) contact sites (EPCS) while AVRPM3b2/c2 localizes to the nucleocytoplasmic space. Additionally, we found that PM3b interacts in planta with AVRPM3b2/c2 through its LRR domain. We further demonstrate that full length PM3b interaction with AVRPM3b2/c2 is considerably weaker than for the isolated PM3b LRR domain or the susceptible PM3 variant PM3CS, indicating that activation of PM3b leads to dissociation of the complex. In line with this: We observed a strong interaction between PM3b and AVRPM3b2/c2 in a P-loop mutant of PM3b which was unable to initiate a cell death response, or when an inactive variant of AVRPM3b2/c2 was used. We propose that PM3b transiently interacts with AVRPM3b2/c2 through residues in the LRR which are conserved among PM3 variants while the amino acids necessary for full activation and cell death signaling are unique to PM3b. Our data suggests that PM3b localization and interaction with AVRPM3b2/c2 differs from other well studied NLRs and further highlights the mechanistic diversity in NLR-mediated responses against pathogens in plants.

plant biology↗

Analysis of a diverse wheat germplasm panel reveals a highly diverse introgression landscape and provides evidence for inter-homoeolog chromosomal recombination

Agriculturally important genes are often introgressed into crops from closely related donor species or landraces. The gene pool of hexaploid bread wheat (Triticum aestivum) is known to contain numerous such "alien" introgressions. Recently established high-quality reference genome sequences allow prediction of the size, frequency, and identity of introgressed chromosome regions. Here, we characterise chromosomal introgressions in bread wheat using exome capture data from the WHEALBI collection. We identified 26,664 putative introgression segments of at least 2 Mb across 434 wheat accessions. Detailed study of the most frequent introgressions identified T. timophevii or its close relatives as a frequent donor species. Importantly, 118 introgressions of at least 10 Mb were exclusive to single wheat accessions, revealing that large populations need to be studied to assess the total diversity of the wheat pangenome. In one case, a 14 Mb introgression in chromosome 7D, exclusive to cultivar Pamukale, was shown by QTL mapping to harbor a recessive powdery mildew resistance gene. We identified multiple events where distal chromosomal segments of one subgenome were duplicated in the genome and replaced the homoeologous segment in another subgenome. We propose that these examples are the results of inter-homoeolog recombination. Our study produced an extensive catalogue of the wheat introgression landscape, providing a resource for wheat breeding. Of note, the finding that the wheat gene pool contains numerous rare, but potentially important introgressions and chromosomal rearrangements has implications for future breeding. Key messageThis study highlights the potential of rare introgressions, as demonstrated by a major QTL for powdery mildew resistance on chromosome 7D. It further shows evidence for inter-homoeolog recombination in wheat.

plant biology↗

A diverse panel of 755 bread wheat accessions harbors untapped genetic diversity in landraces and reveals novel genetic regions conferring powdery mildew resistance

Wheat breeding for disease resistance relies on the availability and use of diverse genetic resources. More than 800,000 wheat accessions are globally conserved in gene banks, but they are mostly uncharacterized for the presence of resistance genes and their potential for agriculture. Based on the selective reduction of previously assembled collections for allele mining for disease resistance, we assembled a trait-customized panel of 755 geographically diverse bread wheat accessions with a focus on landraces, called the LandracePLUS panel. Population structure analysis of this panel based on the TaBW35K SNP array revealed an increased genetic diversity compared to 632 landraces genotyped in an earlier study and 17 high-quality sequenced wheat accessions. The additional genetic diversity found here mostly originated from Turkish, Iranian and Pakistani landraces. We characterized the LandracePLUS panel for resistance to ten diverse isolates of the fungal pathogen powdery mildew. Performing genome-wide association studies and dividing the panel further by a targeted subsetting approach for accessions of distinct geographical origin, we detected several known and already cloned genes, including the Pm2a gene. In addition, we identified 22 putatively novel powdery mildew resistance loci that represent useful sources for resistance breeding and for research on the mildew-wheat pathosystem. Our study shows the value of assembling trait-customized collections and utilizing a diverse range of pathogen races to detect novel loci. It further highlights the importance of integrating landraces of different geographical origins into future diversity studies. Key MessageA bread wheat panel reveals rich genetic diversity in Turkish, Pakistani, and Iranian landraces and novel resistance loci to diverse powdery mildew isolates via subsetting approaches in association studies.

plant biology↗

Evolution of the bread wheat D-subgenome and enriching it with diversity from Aegilops tauschii

Aegilops tauschii, the diploid wild progenitor of the D-subgenome of bread wheat, constitutes a reservoir of genetic diversity for improving bread wheat performance and environmental resilience. To better define and understand this diversity, we sequenced 242 Ae. tauschii accessions and compared them to the wheat D-subgenome. We characterized a rare, geographically-restricted lineage of Ae. tauschii and discovered that it contributed to the wheat D-subgenome, thereby elucidating the origin of bread wheat from at least two independent hybridizations. We then used k-mer-based association mapping to identify discrete genomic regions with candidate genes for disease and pest resistance and demonstrated their functional transfer into wheat by transgenesis and wide crossing, including the generation of a library of synthetic hexaploids incorporating diverse Ae. tauschii genomes. This pipeline permits rapid trait discovery in the diploid ancestor through to functional genetic validation in a hexaploid background amenable to breeding.

plant biology↗