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1.
Plant J ; 106(1): 86-94, 2021 04.
Artigo em Inglês | MEDLINE | ID: mdl-33369792

RESUMO

Most alpha-gliadin genes of the Gli-D2 locus on the D genome of hexaploid bread wheat (Triticum aestivum) encode for proteins with epitopes that can trigger coeliac disease (CD), and several contain a 33-mer peptide with six partly overlapping copies of three epitopes, which is regarded as a remarkably potent T-cell stimulator. To increase genetic diversity in the D genome, synthetic hexaploid wheat lines are being made by hybridising accessions of Triticum turgidum (AB genome) and Aegilops tauschii (the progenitor of the D genome). The diversity of alpha-gliadins in A. tauschii has not been studied extensively. We analysed the alpha-gliadin transcriptome of 51 A. tauschii accessions representative of the diversity in A. tauschii. We extracted RNA from developing seeds and performed 454 amplicon sequencing of the first part of the alpha-gliadin genes. The expression profile of allelic variants of the alpha-gliadins was different between accessions, and also between accessions of the Western and Eastern clades of A. tauschii. Generally, both clades expressed many allelic variants not found in bread wheat. In contrast to earlier studies, we detected the 33-mer peptide in some A. tauschii accessions, indicating that it was introduced along with the D genome into bread wheat. In these accessions, transcripts with the 33-mer peptide were present at lower frequencies than in bread wheat varieties. In most A. tauschii accessions, however, the alpha-gliadins do not contain the epitope, and this may be exploited, through synthetic hexaploid wheats, to breed bread wheat varieties with fewer or no coeliac disease epitopes.


Assuntos
Aegilops/imunologia , Aegilops/metabolismo , Doença Celíaca/imunologia , Epitopos de Linfócito T/imunologia , Gliadina/imunologia , Triticum/imunologia , Epitopos de Linfócito T/metabolismo , Evolução Molecular , Gliadina/metabolismo , Triticum/metabolismo
2.
BMC Plant Biol ; 19(1): 439, 2019 Oct 22.
Artigo em Inglês | MEDLINE | ID: mdl-31640550

RESUMO

BACKGROUND: The Hessian fly (Mayetiola destructor), belonging to the gall midge family (Cecidomyiidae), is a devastating pest of wheat (Triticum aestivum) causing significant yield losses. Despite identification and characterization of numerous Hessian fly-responsive genes and associated biological pathways involved in wheat defense against this dipteran pest, their functional validation has been challenging. This is largely attributed to the large genome, polyploidy, repetitive DNA, and limited genetic resources in hexaploid wheat. The diploid progenitor Aegilops tauschii, D-genome donor of modern-day hexaploid wheat, offers an ideal surrogate eliminating the need to target all three homeologous chromosomes (A, B and D) individually, and thereby making the functional validation of candidate Hessian fly-responsive genes plausible. Furthermore, the well-annotated sequence of Ae. tauschii genome and availability of genetic resources amenable to manipulations makes the functional assays less tedious and time-consuming. However, prior to utilization of this diploid genome for downstream studies, it is imperative to characterize its physical and molecular responses to Hessian fly. RESULTS: In this study we screened five Ae. tauschii accessions for their response to the Hessian fly biotypes L and vH13. Two lines were identified that exhibited a homozygous resistance response to feeding by both Hessian fly biotypes. Studies using physical measurements and neutral red staining showed that the resistant Ae. tauschii accessions resembled hexaploid wheat in their phenotypic responses to Hessian fly, that included similarities in larval developmental stages, leaf and plant growth, and cell wall permeability. Furthermore, molecular responses, characterized by gene expression profiling using quantitative real-time PCR, in select resistant Ae. tauschii lines also revealed similarities with resistant hexaploid wheat. CONCLUSIONS: Phenotypic and molecular characterization of Ae. tauschii to Hessian fly infestation revealed resistant accessions that shared similarities to hexaploid wheat. Resembling the resistant hexaploid wheat, the Ae. tauschii accessions mount an early defense strategy involving defense proteins including lectins, secondary metabolites and reactive oxygen species (ROS) radicals. Our results reveal the suitability of the diploid progenitor for use as an ideal tool for functional genomics research in deciphering the wheat-Hessian fly molecular interactions.


Assuntos
Aegilops/genética , Dípteros/fisiologia , Genoma de Planta/genética , Doenças das Plantas/imunologia , Triticum/genética , Aegilops/imunologia , Aegilops/parasitologia , Animais , Diploide , Genômica , Fenótipo , Doenças das Plantas/parasitologia , Poliploidia , Espécies Reativas de Oxigênio/metabolismo , Triticum/imunologia , Triticum/parasitologia
3.
PLoS One ; 14(9): e0215492, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31539379

RESUMO

Many disease resistance genes that have been transferred from wild relatives to cultivated wheat have played a significant role in wheat production worldwide. Ae. umbellulata is one of the species within the genus Aegilops that have been successfully used as sources of resistance genes to leaf rust, stem rust and powdery mildew. The objectives of the current work was to validate the map position of a major QTL that confers resistance to the stem rust pathogen races Ug99 (TTKSK) and TTTTF with an independent bi-parental mapping population and to refine the QTL region with a bulk segregant analysis approach. Two F2 bi-parental mapping populations were developed from stem rust resistant Ae. umbellulata accessions (PI 298905 and PI 5422375) and stem rust susceptible accessions (PI 542369 and PI 554395). Firstly, one of the two populations was used to map the chromosome location of the resistance gene. Later on, the 2nd population was used to validate the chromosome location in combination with a bulk segregant analysis approach. For the bulk segregant analysis, RNA was extracted from a bulk of leaf tissues of 12 homozygous resistant F3 families, and a separate bulk of 11 susceptible homozygous F3 families derived from the PI 5422375 and PI 554395 cross. The RNA samples of the two bulks and the two parents were sequenced for SNPs identification. Stem rust resistance QTL was validated on chromosome 2U of Ae. umbellulata in the same region in both populations. With bulk segregant analysis, the QTL position was delimited within 3.2 Mbp. Although there were a large number of genes in the orthologous region of the detected QTL on chromosome 2D of Ae. tauschii, we detected only two Ae. umbellulata NLR genes which can be considered as a potential candidate genes.


Assuntos
Aegilops/genética , Resistência à Doença , Locos de Características Quantitativas , Aegilops/imunologia , Aegilops/microbiologia , Basidiomycota/patogenicidade , Genes de Plantas
4.
Nutrients ; 11(2)2019 Jan 22.
Artigo em Inglês | MEDLINE | ID: mdl-30678169

RESUMO

The high global demand of wheat and its subsequent consumption arise from the physicochemical properties of bread dough and its contribution to the protein intake in the human diet. Gluten is the main structural complex of wheat proteins and subjects affected by celiac disease (CD) cannot tolerate gluten protein. Within gluten proteins, α-gliadins constitute the most immunogenic fraction since they contain the main T-cell stimulating epitopes (DQ2.5-glia-α1, DQ2.5-glia-α2, and DQ2.5-glia-α3). In this work, the celiac immunotoxic potential of α-gliadins was studied within Triticeae: diploid, tetraploid, and hexaploid species. The abundance and immunostimulatory capacity of CD canonical epitopes and variants (with one or two mismatches) in all α-gliadin sequences were determined. The results showed that the canonical epitopes DQ2.5-glia-α1 and DQ2.5-glia-α3 were more frequent than DQ2.5-glia-α2. A higher abundance of canonical DQ2.5-glia-α1 epitope was found to be associated with genomes of the BBAADD, AA, and DD types; however, the abundance of DQ2.5-glia-α3 epitope variants was very high in BBAADD and BBAA wheat despite their low abundance in the canonical epitope. The most abundant substitution was that of proline to serine, which was disposed mainly on the three canonical DQ2.5 domains on position 8. Interestingly, our results demonstrated that the natural introduction of Q to H at any position eliminates the toxicity of the three T-cell epitopes in the α-gliadins. The results provided a rational approach for the introduction of natural amino acid substitutions to eliminate the toxicity of three T-cell epitopes, while maintaining the technological properties of commercial wheats.


Assuntos
Aegilops/química , Doença Celíaca/imunologia , Epitopos/genética , Variação Genética , Gliadina/imunologia , Triticum/química , Aegilops/genética , Aegilops/imunologia , Sequência de Aminoácidos , Proliferação de Células , Criança , Gliadina/genética , Humanos , Leucócitos Mononucleares/fisiologia , Ploidias , Linfócitos T , Triticum/genética , Triticum/imunologia
5.
New Phytol ; 221(2): 1023-1035, 2019 01.
Artigo em Inglês | MEDLINE | ID: mdl-30256420

RESUMO

DNA methylation is dynamically involved in plant immunity, but little information is known about its roles in plant interactions with biotrophic fungi, especially in temperate grasses such as wheat (Triticum aestivum). Using wheat diploid progenitor Aegilops tauschii accession AL8/78, the genome of which has been sequenced, we assessed the extent of DNA methylation in response to infection with Blumeria graminis f. sp. tritici (Bgt), which causes powdery mildew. Upon Bgt infection, ARGONAUTE4a (AGO4a) was significantly downregulated in A. tauschii, which was accompanied by a substantial reduction in AGO4a-sorted 24-nt siRNA levels, especially for genes near transposable elements (TAGs). Bisulfite sequencing revealed abundant differentially methylated regions (DMRs) with CHH hypomethylation. TAGs bearing CHH-hypomethylated DMRs were enriched for 'response to stress' functions, including receptor kinase, peroxidase, and pathogenesis-related genes. Virus-induced gene silencing (VIGS) of a DOMAINS REARRANGED METHYLASE 2 (DRM2) homolog enhanced plant resistance to Bgt. The effect of CHH hypomethylation was exemplified by the upregulation of a pathogenesis-related ß-1,3-glucanse gene implicated in Bgt defense. These findings support the idea that dynamic DNA methylation represents a regulatory layer in the complex mechanism of plant immunity, which could be exploited to improve disease resistance in common wheat.


Assuntos
Aegilops/genética , Ascomicetos/fisiologia , Metilação de DNA , Resistência à Doença , Doenças das Plantas/microbiologia , Proteínas de Plantas/metabolismo , Aegilops/imunologia , Aegilops/microbiologia , Interações Hospedeiro-Patógeno , Proteínas de Plantas/genética , Triticum/genética
6.
Tsitol Genet ; 50(4): 26-37, 2016.
Artigo em Inglês, Russo | MEDLINE | ID: mdl-30480415

RESUMO

Using bioinformatics analysis, the homologues of the genes Sr33 and Sr35 were identifed in the genomes of Triticum aestivum, Hordeum vulgare and Triticum urartu. It is known that these genes provide resistance to hightly virulent wheat stem rust races (Ug99). To identify important for resistance amino acid sites, the comparison of the founded homologues with the Sr33 and Sr35 protein sequences was performed. It was found that the sequences S5DMA6 and E9P785 are the closest homologues of RGA1e protein ­ a product of the Sr33 gene, and the sequences M7YFA9 (CNL-C) and F2E9R2 are the homologues of CNL9 ­ a product of the gene Sr35. It is assumed that the homologues of the genes Sr33 and Sr35, which derived from the wild relatives of wheat and barley, can provide resistance to various forms of a stem rust and can be used in the future breeding programs for wheat improvement.


Assuntos
Aegilops/genética , Basidiomycota/patogenicidade , Genes de Plantas , Hordeum/genética , Doenças das Plantas/imunologia , Triticum/genética , Aegilops/classificação , Aegilops/imunologia , Aegilops/microbiologia , Sequência de Aminoácidos , Basidiomycota/fisiologia , Cruzamentos Genéticos , Resistência à Doença/genética , Genoma de Planta , Hordeum/classificação , Hordeum/imunologia , Hordeum/microbiologia , Filogenia , Melhoramento Vegetal , Doenças das Plantas/genética , Doenças das Plantas/microbiologia , Caules de Planta/genética , Caules de Planta/imunologia , Caules de Planta/microbiologia , Alinhamento de Sequência , Homologia de Sequência de Aminoácidos , Triticum/classificação , Triticum/imunologia , Triticum/microbiologia
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