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1.
Nat Commun ; 15(1): 6512, 2024 Aug 02.
Article de Anglais | MEDLINE | ID: mdl-39095395

RÉSUMÉ

Many disease resistance genes have been introgressed into wheat from its wild relatives. However, reduced recombination within the introgressed segments hinders the cloning of the introgressed genes. Here, we have cloned the powdery mildew resistance gene Pm13, which is introgressed into wheat from Aegilops longissima, using a method that combines physical mapping with radiation-induced chromosomal aberrations and transcriptome sequencing analysis of ethyl methanesulfonate (EMS)-induced loss-of-function mutants. Pm13 encodes a kinase fusion protein, designated MLKL-K, with an N-terminal domain of mixed lineage kinase domain-like protein (MLKL_NTD domain) and a C-terminal serine/threonine kinase domain bridged by a brace. The resistance function of Pm13 is validated through transient and stable transgenic complementation assays. Transient over-expression analyses in Nicotiana benthamiana leaves and wheat protoplasts reveal that the fragment Brace-Kinase122-476 of MLKL-K is capable of inducing cell death, which is dependent on a functional kinase domain and the three α-helices in the brace region close to the N-terminus of the kinase domain.


Sujet(s)
Aegilops , Ascomycota , Résistance à la maladie , Maladies des plantes , Protéines végétales , Triticum , Triticum/microbiologie , Triticum/génétique , Maladies des plantes/microbiologie , Maladies des plantes/immunologie , Maladies des plantes/génétique , Protéines végétales/génétique , Protéines végétales/métabolisme , Résistance à la maladie/génétique , Aegilops/génétique , Aegilops/métabolisme , Végétaux génétiquement modifiés , Protein kinases/métabolisme , Protein kinases/génétique , Protéines de fusion recombinantes/métabolisme , Protéines de fusion recombinantes/génétique , Nicotiana/génétique , Nicotiana/microbiologie , Feuilles de plante/microbiologie , Feuilles de plante/génétique , Feuilles de plante/métabolisme , Régulation de l'expression des gènes végétaux
2.
J Genet Genomics ; 51(3): 313-325, 2024 Mar.
Article de Anglais | MEDLINE | ID: mdl-37225086

RÉSUMÉ

Mitogen-activated protein kinase (MAPK) cascades play important roles in disease resistance in model plant species. However, the functions of MAPK signaling pathways in crop disease resistance are largely unknown. Here we report the function of HvMKK1-HvMPK4-HvWRKY1 module in barley immune system. HvMPK4 is identified to play a negative role in barley immune response against Bgh, as virus-induced gene silencing of HvMPK4 results in enhanced disease resistance whilst stably overexpressing HvMPK4 leads to super-susceptibility to Bgh infection. Furthermore, the barley MAPK kinase HvMKK1 is found to specifically interact with HvMPK4, and the activated HvMKK1DD variant specifically phosphorylates HvMPK4 in vitro. Moreover, the transcription factor HvWRKY1 is identified to be a downstream target of HvMPK4 and phosphorylated by HvMPK4 in vitro in the presence of HvMKK1DD. Phosphorylation assay coupled with mutagenesis analyses identifies S122, T284, and S347 in HvWRKY1 as the major residues phosphorylated by HvMPK4. HvWRKY1 is phosphorylated in barley at the early stages of Bgh infection, which enhances its suppression on barley immunity likely due to enhanced DNA-binding and transcriptional repression activity. Our data suggest that the HvMKK1-HvMPK4 kinase pair acts upstream of HvWRKY1 to negatively regulate barley immunity against powdery mildew.


Sujet(s)
Ascomycota , Hordeum , Ascomycota/génétique , Ascomycota/métabolisme , Hordeum/génétique , Hordeum/métabolisme , Hordeum/microbiologie , Protéines végétales/génétique , Protéines végétales/métabolisme , Résistance à la maladie/génétique , Maladies des plantes/génétique , Maladies des plantes/microbiologie , Régulation de l'expression des gènes végétaux/génétique
3.
Plant Commun ; 4(2): 100472, 2023 03 13.
Article de Anglais | MEDLINE | ID: mdl-36352792

RÉSUMÉ

Wheat powdery mildew, caused by Blumeria graminis f. sp. tritici (Bgt), is a devastating disease that threatens wheat production worldwide. Pm12, which originated from Aegilops speltoides, a wild relative of wheat, confers strong resistance to powdery mildew and therefore has potential use in wheat breeding. Using susceptible mutants induced by gamma irradiation, we physically mapped and isolated Pm12 and showed it to be orthologous to Pm21 from Dasypyrum villosum, also a wild relative of wheat. The resistance function of Pm12 was validated via ethyl methanesulfonate mutagenesis, virus-induced gene silencing, and stable genetic transformation. Evolutionary analysis indicates that the Pm12/Pm21 loci in wheat species are relatively conserved but dynamic. Here, we demonstrated that the two orthologous genes, Pm12 and Pm21, possess differential resistance against the same set of Bgt isolates. Overexpression of the coiled-coil domains of both PM12 and PM21 induces cell death in Nicotiana benthamiana leaves. However, their full-length forms display different cell death-inducing activities caused by their distinct intramolecular interactions. Cloning of Pm12 will facilitate its application in wheat breeding programs. This study also gives new insight into two orthologous resistance genes, Pm12 and Pm21, which show different race specificities and intramolecular interaction patterns.


Sujet(s)
Amélioration des plantes , Triticum , Triticum/génétique , Gènes de plante , Poaceae/génétique
4.
Front Plant Sci ; 12: 733237, 2021.
Article de Anglais | MEDLINE | ID: mdl-34567043

RÉSUMÉ

Powdery mildew is one of the most important fungal pathogen diseases. The genome of barley mildew fungus, Blumeria graminis f. sp. hordei (Bgh), encodes a large number of candidate secreted effector proteins (CSEPs). So far, the function and mechanism of most CSEPs remain largely unknown. Here, we identify a Bgh effector CSEP0027, a member of family 41, triggering cell death in Nicotiana benthamiana. CSEP0027 contains a functional signal peptide (SP), verified by yeast secretion assay. We show that CSEP0027 promotes Bgh virulence in barley infection using transient gene expression and host-induced gene silencing (HIGS). Barley catalase HvCAT1 is identified as a CSEP0027 interactor by yeast two-hybrid (Y2H) screening, and the interaction is verified in yeast, in vitro and in vivo. The coexpression of CSEP0027 and HvCAT1 in barley cells results in altered localization of HvCAT1 from the peroxisome to the nucleus. Barley stripe mosaic virus (BSMV)-silencing and transiently-induced gene silencing (TIGS) assays reveal that HvCAT1 is required for barley immunity against Bgh. We propose that CSEP0027 interacts with barley HvCAT1 to regulate the host immunity and likely reactive oxygen species (ROS) homeostasis to promote fungal virulence during barley infection.

5.
Plant Mol Biol ; 96(6): 607-625, 2018 Apr.
Article de Anglais | MEDLINE | ID: mdl-29582247

RÉSUMÉ

KEY MESSAGE: Three EDS1 genes were cloned from common wheat and were demonstrated to positively regulate resistance to powdery mildew in wheat. The EDS1 proteins play important roles in plant basal resistance and TIR-NB-LRR protein-triggered resistance in dicots. Until now, there have been very few studies on EDS1 in monocots, and none in wheat. Here, we report on three common wheat orthologous genes of EDS1 family (TaEDS1-5A, 5B and 5D) and their function in powdery mildew resistance. Comparisons of these genes with their orthologs in diploid ancestors revealed that EDS1 is a conserved gene family in Triticeae. The cDNA sequence similarity among the three TaEDS1 genes was greater than 96.5%, and they shared sequence similarities of more than 99.6% with the respective orthologs from diploid ancestors. The phylogenetic analysis revealed that the EDS1 family originated prior to the differentiation of monocots and dicots, and EDS1 members have since undergone clear structural differentiation. The transcriptional levels of TaEDS1 genes in the leaves were obviously higher than those of the other organs, and they were induced by Blumeria graminis f. sp. tritici (Bgt) infection and salicylic acid (SA) treatment. The BSMV-VIGS experiments indicated that knock-down the transcriptional levels of the TaEDS1 genes in a powdery mildew-resistant variety of common wheat compromised resistance. Contrarily, transient overexpression of TaEDS1 genes in a susceptible common wheat variety significantly reduced the haustorium index and attenuated the growth of Bgt. Furthermore, the expression of TaEDS1 genes in the Arabidopsis mutant eds1-1 complemented its susceptible phenotype to powdery mildew. The above evidences strongly suggest that TaEDS1 acts as a positive regulator and confers resistance against powdery mildew in common wheat.


Sujet(s)
Résistance à la maladie/génétique , Maladies des plantes/génétique , Protéines végétales/génétique , Triticum/génétique , Séquence d'acides aminés , Arabidopsis/génétique , Arabidopsis/microbiologie , Protéines d'Arabidopsis/génétique , Ascomycota/physiologie , Protéines de liaison à l'ADN/génétique , Analyse de profil d'expression de gènes/méthodes , Régulation de l'expression des gènes végétaux , Techniques de knock-down de gènes , Test de complémentation , Mutation , Phylogenèse , Maladies des plantes/microbiologie , Feuilles de plante/génétique , Feuilles de plante/microbiologie , Protéines végétales/classification , Isoformes de protéines/génétique , Similitude de séquences d'acides aminés , Triticum/microbiologie
6.
Yi Chuan ; 38(12): 1090-1101, 2016 12 20.
Article de Anglais | MEDLINE | ID: mdl-28034841

RÉSUMÉ

Wheat stripe rust, caused by Puccinia striiformis West. f. sp. tritici Eriks. &Henn. (Pst), is a serious fungal disease. Identification of new genes associate with stripe rust resistance is important for developing disease resistant wheat cultivars and studying the mechanism of disease resistance. Trihelix is a plant specific transcription factor family, which is involved in regulation of growth and development, morphogenesis, and response to stresses. So far, no study reports on the relationship between the Trihelix family and wheat stripe rust. In this study, a gene in the GTγ subfamily of Trihelix family, designated TuGTγ-3, was cloned from Triticum urartu Tum. (2n=2x=14, AA). The results of sequencing demonstrated that TuGTγ-3 gene consisted of a complete open reading frame (ORF), and its coding sequence was 1329 bp in length, which encoded a protein with 442 amino acids. The predicted molecular weight of this protein was 50.31 kDa and the theoretical isoelectric point was 6.12. Bioinformatic analysis revealed that TuGTγ-3 protein had a monopartite nuclear localization signal (GLPMQKKMRYT), and had neither transmembrane domain nor signal peptide. The conserved trihelix domain, the fourth α-helix and the CC domain were located in the regions of Q115?R187, F234?Y241 and K362?K436, respectively. Dissection of secondary structure showed that TuGTγ-3 protein comprised of 43.89% α-helix, 9.51% extended strand, 9.95% ß-turn and 36.65% random coil structures. Based on the BLAST search against the genome database of common wheat from IWGSC, TuGTγ-3 was located on the long arm of chromosome 5A. Transient expression experiment using onion inner epidermal cell showed that the fusion protein TuGTγ-3-GFP distributed mainly in nuclear and slightly in cytoplasm. Expression profiles in different organs indicated that expression level of TuGTγ-3 was much higher in leaves than that in roots or leaf sheaths, and the expression in leaves was extremely up-regulated by infection of the Pst race CYR32. Furthermore, the BSMV-VIGS experiment demonstrated that the transcription factor TuGTγ-3 positively regulated resistance to stripe rust in T. urartu.


Sujet(s)
Triticum/métabolisme , Résistance à la maladie/génétique , Résistance à la maladie/physiologie , Cadres ouverts de lecture/génétique , Maladies des plantes/génétique , Protéines végétales/génétique , Protéines végétales/métabolisme
7.
Int J Mol Sci ; 17(7)2016 Jul 19.
Article de Anglais | MEDLINE | ID: mdl-27447615

RÉSUMÉ

The Roegneria of Triticeae is a large genus including about 130 allopolyploid species. Little is known about its high-molecular-weight glutenin subunits (HMW-GSs). Here, we reported six novel HMW-GS genes from R. nakaii and R. alashanica. Sequencing indicated that Rny1, Rny3, and Ray1 possessed intact open reading frames (ORFs), whereas Rny2, Rny4, and Ray2 harbored in-frame stop codons. All of the six genes possessed a similar primary structure to known HMW-GS, while showing some unique characteristics. Their coding regions were significantly shorter than Glu-1 genes in wheat. The amino acid sequences revealed that all of the six genes were intermediate towards the y-type. The phylogenetic analysis showed that the HMW-GSs from species with St, StY, or StH genome(s) clustered in an independent clade, varying from the typical x- and y-type clusters. Thus, the Glu-1 locus in R. nakaii and R. alashanica is a very primitive glutenin locus across evolution. The six genes were phylogenetically split into two groups clustered to different clades, respectively, each of the two clades included the HMW-GSs from species with St (diploid and tetraploid species), StY, and StH genomes. Hence, it is concluded that the six Roegneria HMW-GS genes are from two St genomes undergoing slight differentiation.


Sujet(s)
Évolution moléculaire , Gènes de plante/génétique , Glutens/génétique , Poaceae/génétique , Séquence d'acides aminés , Technique de Western , Clonage moléculaire , Électrophorèse sur gel de polyacrylamide , Masse moléculaire , Phylogenèse , Poaceae/classification , Réaction de polymérisation en chaîne , Sous-unités de protéines , Similitude de séquences d'acides aminés , Spécificité d'espèce
8.
Planta ; 242(1): 137-51, 2015 Jul.
Article de Anglais | MEDLINE | ID: mdl-25893867

RÉSUMÉ

MAIN CONCLUSION: TraeALDH7B1 - 5A , encoding aldehyde dehydrogenase 7 in wheat, conferred significant drought tolerance to Arabidopsis , supported by molecular biological and physiological experiments. Drought stress significantly affects wheat yields. Aldehyde dehydrogenase (ALDH) is a family of enzymes catalyzing the irreversible conversion of aldehydes into acids to decrease the damage caused by abiotic stresses. However, no wheat ALDH member has been functionally characterized to date. Here, we obtained a differentially expressed EST encoding ALDH7 from a cDNA-AFLP library of wheat that was treated with polyethylene glycol 6000. The three full-length homologs of TraeALDH7B1 were isolated by searching the NCBI database and by homolog-based cloning method. Using nulli-tetrasomic lines we located them on wheat chromosomes 5A, 5B and 5D, and named them as TraeALDH7B1-5A, -5B and -5D, respectively. Gene expression profiles indicated that the expressions of all three genes were induced in roots, leaves, culms and spikelets under drought and salt stresses. Enzymatic activity analysis showed that TraeALDH7B1-5A had acetaldehyde dehydrogenase activity. For further functional analysis, we developed transgenic Arabidopsis lines overexpressing TraeALDH7B1-5A driven by the cauliflower mosaic virus 35S promoter. Compared with wild type Arabidopsis, 35S::TraeALDH7B1-5A plants significantly enhanced the tolerance to drought stress, which was demonstrated by up-regulation of stress responsive genes and physiological evidence of primary root length, maintenance of water retention and contents of chlorophyll and MDA. The combined results indicated that TraeALDH7B1-5A is an important drought responsive gene for genetic transformation to improve drought tolerance in crops.


Sujet(s)
Adaptation physiologique , Aldehyde dehydrogenase/métabolisme , Arabidopsis/physiologie , Sécheresses , Protéines végétales/métabolisme , Triticum/enzymologie , Adaptation physiologique/effets des médicaments et des substances chimiques , Arabidopsis/effets des médicaments et des substances chimiques , Arabidopsis/génétique , Chromosomes de plante/génétique , Dosages enzymatiques , Analyse de profil d'expression de gènes , Régulation de l'expression des gènes végétaux/effets des médicaments et des substances chimiques , Gènes de plante , Germination/effets des médicaments et des substances chimiques , Mannitol/pharmacologie , Modèles biologiques , Phylogenèse , Protéines végétales/génétique , Racines de plante/effets des médicaments et des substances chimiques , Racines de plante/génétique , Racines de plante/croissance et développement , Végétaux génétiquement modifiés , Polyéthylène glycols/pharmacologie , Cartes d'interactions protéiques/effets des médicaments et des substances chimiques , Graines/effets des médicaments et des substances chimiques , Graines/génétique , Graines/croissance et développement , Similitude de séquences d'acides nucléiques , Chlorure de sodium/pharmacologie , Stress physiologique/effets des médicaments et des substances chimiques , Triticum/effets des médicaments et des substances chimiques , Triticum/physiologie , Eau
10.
Plant Mol Biol ; 87(6): 577-89, 2015 Apr.
Article de Anglais | MEDLINE | ID: mdl-25697954

RÉSUMÉ

RAR1 and SGT1 are important co-chaperones of Hsp90. We previously showed that TaHsp90.1 is required for wheat seedling growth, and that TaHsp90.2 and TaHsp90.3 are essential for resistance (R) gene mediated resistance to stripe rust fungus. Here, we report the characterization of TaRAR1 and TaSGT1 genes in bread wheat. TaRAR1 and TaSGT1 each had three homoeologs, which were located on wheat groups 2 and 3 chromosomes, respectively. Strong inhibition of seedling growth was observed after silencing TaSGT1 but not TaRAR1. In contrast, decreasing the expression of TaRAR1 or TaSGT1 could all compromise R gene mediated resistance to stripe rust fungus infection. Protein-protein interactions were found among TaRAR1, TaSGT1 and TaHsp90. The N-terminus of TaHsp90, the CHORD-I and CHORD-II domains of TaRAR1 and the CS domain of TaSGT1 may be instrumental for the interactions among the three proteins. Based on this work and our previous study on TaHsp90, we speculate that the TaSGT1-TaHsp90.1 interaction is important for maintaining bread wheat seedling growth. The TaRAR1-TaSGT1-TaHsp90.2 and TaRAR1-TaSGT1-TaHsp90.3 interactions are involved in controlling the resistance to stripe rust disease. The new information obtained here should aid further functional investigations of TaRAR1-TaSGT1-TaHsp90 complexes in regulating bread wheat growth and disease resistance.


Sujet(s)
Basidiomycota/physiologie , Résistance à la maladie , Maladies des plantes/immunologie , Protéines végétales/métabolisme , Triticum/génétique , Séquence nucléotidique , Extinction de l'expression des gènes , Protéines du choc thermique HSP90/génétique , Protéines du choc thermique HSP90/métabolisme , Données de séquences moléculaires , Phylogenèse , Maladies des plantes/microbiologie , Feuilles de plante/génétique , Feuilles de plante/croissance et développement , Feuilles de plante/immunologie , Feuilles de plante/microbiologie , Protéines végétales/génétique , Plant/génétique , Plant/croissance et développement , Plant/immunologie , Plant/microbiologie , Analyse de séquence d'ADN , Triticum/croissance et développement , Triticum/immunologie , Triticum/microbiologie , Techniques de double hybride
12.
J Integr Plant Biol ; 57(8): 688-97, 2015 Aug.
Article de Anglais | MEDLINE | ID: mdl-25545589

RÉSUMÉ

Chromosome segmental introgression lines (ILs) are an effective way to utilize germplasm resources in crops. To improve agronomic traits of wheat cultivar (Triticum aestivum) Shi 4185, four sets of ILs were developed. The donors were Chinese endemic subspecies accessions Yunnan wheat (T. aestivum ssp. yunnanense) YN3, Tibetan semi-wild wheat (T. aestivum ssp. tibetanum) XZ-ZM19450, and Xinjiang wheat (T. aestivum ssp. petropavlovskyi) XJ5, and synthetic wheat HC-XM1620 derived from a cross between T. durum acc. D67.2/P66.270 with Aegilops tauschii acc. 218. Totals of 356, 366, 445 and 457 simple sequence repeat (SSR) markers were polymorphic between Shi 4185 and YN3, XZ-ZM19450, XJ5 and HC-XM1620, respectively. In total, 991 ILs were identified, including 300 derived from YN3, covering 95% of the genome of Shi 4185, 218 from XZ-ZM19450 (79%), 279 from XJ5 (97%), and 194 from HC-ZX1620 (84%). The sizes and locations of each introgression were determined from a consensus SSR linkage map. Using the ILs, 11 putative quantitative trait loci (QTLs) were identified for plant height (PH), spike length (SL) and grain number per spike (GNS). Comparative analyses of 24 elite ILs with the parents revealed that the four donor parents could be important resources to improve wheat SL and GNS. Our work offers a case for utilizing endemic landraces for QTL mapping and improvement of wheat cultivars using introgression lines.


Sujet(s)
Croisement consanguin , Triticum/génétique , Cartographie chromosomique , Génotype , Polymorphisme génétique , Locus de caractère quantitatif/génétique , Saisons , Triticum/anatomie et histologie
14.
PLoS One ; 9(1): e84781, 2014.
Article de Anglais | MEDLINE | ID: mdl-24454749

RÉSUMÉ

MADS-box genes are important transcription factors for plant development, especially floral organogenesis. Brachypodium distachyon is a model for biofuel plants and temperate grasses such as wheat and barley, but a comprehensive analysis of MADS-box family proteins in Brachypodium is still missing. We report here a genome-wide analysis of the MADS-box gene family in Brachypodium distachyon. We identified 57 MADS-box genes and classified them into 32 MIKC(c)-type, 7 MIKC*-type, 9 Mα, 7 Mß and 2 Mγ MADS-box genes according to their phylogenetic relationships to the Arabidopsis and rice MADS-box genes. Detailed gene structure and motif distribution were then studied. Investigation of their chromosomal localizations revealed that Brachypodium MADS-box genes distributed evenly across five chromosomes. In addition, five pairs of type II MADS-box genes were found on synteny blocks derived from whole genome duplication blocks. We then performed a systematic expression analysis of Brachypodium MADS-box genes in various tissues, particular floral organs. Further detection under salt, drought, and low-temperature conditions showed that some MADS-box genes may also be involved in abiotic stress responses, including type I genes. Comparative studies of MADS-box genes among Brachypodium, rice and Arabidopsis showed that Brachypodium had fewer gene duplication events. Taken together, this work provides useful data for further functional studies of MADS-box genes in Brachypodium distachyon.


Sujet(s)
Brachypodium/génétique , Gènes de plante/génétique , Protéines à domaine MADS/génétique , Famille multigénique , Arabidopsis/effets des médicaments et des substances chimiques , Arabidopsis/génétique , Brachypodium/effets des médicaments et des substances chimiques , Basse température , Séquence conservée/génétique , Sécheresses , Duplication de gène/génétique , Régulation de l'expression des gènes végétaux/effets des médicaments et des substances chimiques , Gènes dupliqués , Variation génétique , Motifs nucléotidiques/génétique , Oryza/effets des médicaments et des substances chimiques , Oryza/génétique , Phylogenèse , Chlorure de sodium/pharmacologie , Stress physiologique/effets des médicaments et des substances chimiques , Stress physiologique/génétique
15.
Plant Cell Environ ; 37(7): 1561-73, 2014 Jul.
Article de Anglais | MEDLINE | ID: mdl-24372025

RÉSUMÉ

Copper is an essential micronutrient for plant growth and development, and copper transporter plays a pivotal role for keeping copper homeostasis. However, little is known about copper transporters in wheat. Here, we report a novel copper transporter gene family, TaCT1, in common wheat. Three TaCT1 homoeologous genes were isolated and assigned to group 5 chromosomes. Each of the TaCT1 genes (TaCT1-5A, -5B or -5D) possesses 12 transmembrane domains. TaCT1 genes exhibited higher transcript levels in leaf than in root, culm and spikelet. Excess copper down-regulated the transcript levels of TaCT1 and copper deficiency-induced TaCT1 expression. Subcellular experiments localized the TaCT1 to the Golgi apparatus. Yeast expression experiments and virus-induced gene silencing analysis indicated that the TaCT1 functioned in copper transport. Site-directed mutagenesis demonstrated that three amino acid residues, Met(35), Met(38) and Cys(365), are required for TaCT1 function. Phylogenetic and functional analyses suggested that homologous genes shared high similarity with TaCT1 may exist exclusively in monocot plants. Our work reveals a novel wheat gene family encoding major facilitator superfamily (MFS)-type copper transporters, and provides evidence for their functional involvement in promoting copper uptake and keeping copper homeostasis in common wheat.


Sujet(s)
Cuivre/métabolisme , Protéines de transport membranaire/génétique , Protéines végétales/génétique , Triticum/génétique , Triticum/métabolisme , Acides aminés/métabolisme , Séquence nucléotidique , Transport biologique/effets des médicaments et des substances chimiques , Chromosomes de plante/génétique , Cuivre/toxicité , Régulation de l'expression des gènes végétaux/effets des médicaments et des substances chimiques , Techniques de knock-down de gènes , Gènes de plante , Test de complémentation , Protéines de transport membranaire/métabolisme , Données de séquences moléculaires , Famille multigénique , Spécificité d'organe/effets des médicaments et des substances chimiques , Spécificité d'organe/génétique , Phylogenèse , Protéines végétales/métabolisme , ARN messager/génétique , ARN messager/métabolisme , Saccharomyces cerevisiae/métabolisme , Stress physiologique/effets des médicaments et des substances chimiques , Stress physiologique/génétique , Fractions subcellulaires/métabolisme , Triticum/effets des médicaments et des substances chimiques
16.
Int J Mol Sci ; 14(8): 15330-47, 2013 Jul 24.
Article de Anglais | MEDLINE | ID: mdl-23887654

RÉSUMÉ

Hexaploid wheat displays limited genetic variation. As a direct A and B genome donor of hexaploid wheat, tetraploid wheat represents an important gene pool for cultivated bread wheat. Many disease resistant genes express conserved domains of the nucleotide-binding site and leucine-rich repeats (NBS-LRR). In this study, we isolated a CC-NBS-LRR gene locating on chromosome 7B from durum wheat variety Italy 363, and designated it TdRGA-7Ba. Its open reading frame was 4014 bp, encoding a 1337 amino acid protein with a complete NBS domain and 18 LRR repeats, sharing 44.7% identity with the PM3B protein. TdRGA-7Ba expression was continuously seen at low levels and was highest in leaves. TdRGA-7Ba has another allele TdRGA-7Bb with a 4 bp deletion at position +1892 in other cultivars of tetraploid wheat. In Ae. speltoides, as a B genome progenitor, both TdRGA-7Ba and TdRGA-7Bb were detected. In all six species of hexaploid wheats (AABBDD), only TdRGA-7Bb existed. Phylogenic analysis showed that all TdRGA-7Bb type genes were grouped in one sub-branch. We speculate that TdRGA-7Bb was derived from a TdRGA-7Ba mutation, and it happened in Ae. speltoides. Both types of TdRGA-7B participated in tetraploid wheat formation. However, only the TdRGA-7Bb was retained in hexaploid wheat.


Sujet(s)
Protéines de transport/génétique , Protéines végétales/génétique , Protéines/génétique , Triticum/génétique , Séquence d'acides aminés , Séquence nucléotidique , Protéines de transport/biosynthèse , Chromosomes de plante/génétique , Clonage moléculaire , Évolution moléculaire , Variation génétique , Protéines à répétitions riches en leucine , Répétitions microsatellites/génétique , Données de séquences moléculaires , Phylogenèse , Protéines végétales/biosynthèse , Répétitions de trinucléotides/génétique
17.
Mol Plant ; 5(5): 1029-41, 2012 Sep.
Article de Anglais | MEDLINE | ID: mdl-22311778

RÉSUMÉ

It remains unknown whether a sucrose transporter mediates sugar signaling. Here, we report that the Arabidopsis (Arabidopsis thaliana) sucrose transporter SUT4 interacts with five members of the Arabidopsis cytochrome b5 (Cyb5) family, and sucrose represses the interaction between SUT4 and a Cyb5 member Cyb5-2/A. We observed that down-regulation of SUT4 and three cytochrome b5 members (Cyb5-2, Cyb5-4, and Cyb5-6) confers the sucrose- and glucose-insensitive phenotypes in the sucrose/glucose-induced inhibition of seed germination. The sut4 cyb5-2 double mutant displays slightly stronger sucrose/glucose-insensitive phenotypes than either the sut4 or cyb5-2 single mutant. We showed that the SUT4/Cyb5-2-mediated signaling in the sucrose/glucose-induced inhibition of seed germination does not require ABA or the currently known ABI2/ABI4/ABI5-mediated signaling pathway(s). These data provide evidence that the sucrose transporter SUT4 interacts with Cyb5 to positively mediate sucrose and glucose signaling in the sucrose/glucose-induced inhibition of seed germination.


Sujet(s)
Protéines d'Arabidopsis/métabolisme , Arabidopsis/métabolisme , Cytochromes b5/métabolisme , Germination , Glucose/métabolisme , Protéines de transport membranaire/métabolisme , Graines/croissance et développement , Saccharose/métabolisme , Acide abscissique/métabolisme , Arabidopsis/génétique , Arabidopsis/croissance et développement , Protéines d'Arabidopsis/génétique , Cytochromes b5/génétique , Régulation de l'expression des gènes au cours du développement , Protéines de transport membranaire/génétique , Données de séquences moléculaires , Liaison aux protéines , Graines/génétique , Graines/métabolisme , Transduction du signal
18.
New Phytol ; 191(2): 418-431, 2011 Jul.
Article de Anglais | MEDLINE | ID: mdl-21488877

RÉSUMÉ

Heat shock protein 90 (Hsp90) molecular chaperones play important roles in plant growth and responses to environmental stimuli. However, little is known about the genes encoding Hsp90s in common wheat. Here, we report genetic and functional analysis of the genes specifying cytosolic Hsp90s in this species. Three groups of homoeologous genes (TaHsp90.1, TaHsp90.2 and TaHsp90.3), encoding three types of cytosolic Hsp90, were isolated. The loci containing TaHsp90.1, TaHsp90.2 and TaHsp90.3 genes were assigned to groups 2, 7 and 5 chromosomes, respectively. TaHsp90.1 genes exhibited higher transcript levels in the stamen than in the leaf, root and culm. TaHsp90.2 and TaHsp90.3 genes were more ubiquitously transcribed in the vegetative and reproductive organs examined. Decreasing the expression of TaHsp90.1 genes through virus-induced gene silencing (VIGS) caused pronounced inhibition of wheat seedling growth, whereas the suppression of TaHsp90.2 or TaHsp90.3 genes via VIGS compromised the hypersensitive resistance response of the wheat variety Suwon 11 to stripe rust fungus. Our work represents the first systematic determination of wheat genes encoding cytosolic Hsp90s, and provides useful evidence for the functional involvement of cytosolic Hsp90s in the control of seedling growth and disease resistance in common wheat.


Sujet(s)
Basidiomycota/physiologie , Protéines du choc thermique HSP90/métabolisme , Maladies des plantes/immunologie , Immunité des plantes/immunologie , Triticum/physiologie , Cartographie chromosomique , Chromosomes de plante/génétique , Cytosol/composition chimique , ADN complémentaire , Exons/génétique , Régulation de l'expression des gènes végétaux , Techniques de knock-down de gènes , Extinction de l'expression des gènes , Protéines du choc thermique HSP90/génétique , Introns/génétique , Spécificité d'organe/génétique , Phénotype , Phylogenèse , Maladies des plantes/microbiologie , Feuilles de plante/immunologie , Feuilles de plante/microbiologie , Protéines végétales/génétique , Protéines végétales/métabolisme , Plant/croissance et développement , Plant/immunologie , Plant/microbiologie , Triticum/génétique , Triticum/immunologie , Triticum/microbiologie
19.
Plant Physiol ; 150(4): 1880-901, 2009 Aug.
Article de Anglais | MEDLINE | ID: mdl-19502355

RÉSUMÉ

Sugar transporters are central machineries to mediate cross-membrane transport of sugars into the cells, and sugar availability may serve as a signal to regulate the sugar transporters. However, the mechanisms of sugar transport regulation by signal sugar availability remain unclear in plant and animal cells. Here, we report that a sucrose transporter, MdSUT1, and a sorbitol transporter, MdSOT6, both localized to plasma membrane, were identified from apple (Malus domestica) fruit. Using a combination of the split-ubiquitin yeast two-hybrid, immunocoprecipitation, and bimolecular fluorescence complementation assays, the two distinct sugar transporters were shown to interact physically with an apple endoplasmic reticulum-anchored cytochrome b5 MdCYB5 in vitro and in vivo. In the yeast systems, the two different interaction complexes function to up-regulate the affinity of the sugar transporters, allowing cells to adapt to sugar starvation. An Arabidopsis (Arabidopsis thaliana) homolog of MdCYB5, AtCYB5-A, also interacts with the two sugar transporters and functions similarly. The point mutations leucine-73 --> proline in MdSUT1 and leucine-117 --> proline in MdSOT6, disrupting the bimolecular interactions but without significantly affecting the transporter activities, abolish the stimulating effects of the sugar transporter-cytochrome b5 complex on the affinity of the sugar transporters. However, the yeast (Saccharomyces cerevisiae) cytochrome b5 ScCYB5, an additional interacting partner of the two plant sugar transporters, has no function in the regulation of the sugar transporters, indicating that the observed biological functions in the yeast systems are specific to plant cytochrome b5s. These findings suggest a novel mechanism by which the plant cells tailor sugar uptake to the surrounding sugar availability.


Sujet(s)
Métabolisme glucidique , Cytochromes b5/métabolisme , Malus/métabolisme , Protéines de transport membranaire/métabolisme , Protéines végétales/métabolisme , Adaptation physiologique , Séquence d'acides aminés , Arabidopsis/cytologie , Arabidopsis/métabolisme , Protéines d'Arabidopsis/métabolisme , Glucides/déficit , Cytochromes b5/composition chimique , Cinétique , Modèles biologiques , Données de séquences moléculaires , Spécificité d'organe , Liaison aux protéines , Transport des protéines , Saccharomyces cerevisiae/cytologie , Saccharomyces cerevisiae/croissance et développement , Saccharomyces cerevisiae/métabolisme , Protéines de Saccharomyces cerevisiae/métabolisme , Spécificité du substrat
20.
J Exp Bot ; 60(3): 1025-34, 2009.
Article de Anglais | MEDLINE | ID: mdl-19174457

RÉSUMÉ

NAD(+)-dependent sorbitol dehydrogenase (NAD-SDH, EC 1.1.1.14), a key enzyme in sorbitol metabolism, plays an important role in regulating sink strength and determining the quality of apple fruit. Understanding the tissue and subcellular localization of NAD-SDH is helpful for understanding sorbitol metabolism in the apple. In this study, two NAD-SDH cDNA sequences were isolated from apple fruits (Malus domestica Borkh cv. Starkrimson) and named MdSDH5 and MdSDH6. Immunohistochemical analysis revealed that NAD-SDH is distributed in both the flesh and the vascular tissue of the fruit, and the vascular tissue and mesophyll tissue in the young and old leaves, indicating that it is a ubiquitous protein expressed in both sink and source organs. Immunogold electron microscopy analysis demonstrated that NAD-SDH is localized mainly in the cytoplasm and chloroplast of the fruit and leaves. The chloroplast localization of NAD-SDH was confirmed by the transient expression of MdSDH5-GFP and MdSDH6-GFP in the mesophyll protoplast of Arabidopsis. NAD-SDH was also found in electron opaque deposits of vacuoles in young and mature leaves. These data show that NAD-SDH has different subcellular localizations in fruit and leaves, indicating that it might play a different role in sorbitol metabolism in different tissues of apple.


Sujet(s)
Fruit/enzymologie , L-iditol 2-dehydrogenase/métabolisme , Malus/enzymologie , Feuilles de plante/enzymologie , Séquence d'acides aminés , Anticorps , Technique de Western , Chloroplastes/enzymologie , Clonage moléculaire , Fruit/cytologie , Fruit/ultrastructure , L-iditol 2-dehydrogenase/composition chimique , L-iditol 2-dehydrogenase/isolement et purification , Malus/cytologie , Malus/ultrastructure , Données de séquences moléculaires , NAD , Spécificité d'organe , Phylogenèse , Feuilles de plante/cytologie , Feuilles de plante/ultrastructure , Transport des protéines , Analyse de séquence de protéine , Fractions subcellulaires/enzymologie
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