Littérature scientifique sur le sujet « Avirulence factors »
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Articles de revues sur le sujet "Avirulence factors"
Waalwijk, Cees, et Jacq R. A. De Koning. « Towards Isolation of Avirulence Factors in Fusarium Oxysporum from Carnation ». Cereal Research Communications 25, no 3 (septembre 1997) : 841–43. http://dx.doi.org/10.1007/bf03543869.
Texte intégralJanzac, Bérenger, Josselin Montarry, Alain Palloix, Olivier Navaud et Benoît Moury. « A Point Mutation in the Polymerase of Potato virus Y Confers Virulence Toward the Pvr4 Resistance of Pepper and a High Competitiveness Cost in Susceptible Cultivar ». Molecular Plant-Microbe Interactions® 23, no 6 (juin 2010) : 823–30. http://dx.doi.org/10.1094/mpmi-23-6-0823.
Texte intégralZhu, Weiguang, Bing Yang, Jaishree M. Chittoor, Lowell B. Johnson et Frank F. White. « AvrXa10 Contains an Acidic Transcriptional Activation Domain in the Functionally Conserved C Terminus ». Molecular Plant-Microbe Interactions® 11, no 8 (août 1998) : 824–32. http://dx.doi.org/10.1094/mpmi.1998.11.8.824.
Texte intégralHuang, Changjun. « From Player to Pawn : Viral Avirulence Factors Involved in Plant Immunity ». Viruses 13, no 4 (16 avril 2021) : 688. http://dx.doi.org/10.3390/v13040688.
Texte intégralHuertas-González, M. D., M. C. Ruiz-Roldán, A. Di Pietro et M. I. G. Roncero. « Cross protection provides evidence for race-specific avirulence factors inFusarium oxysporum ». Physiological and Molecular Plant Pathology 54, no 3-4 (mars 1999) : 63–72. http://dx.doi.org/10.1006/pmpp.1998.0185.
Texte intégralAmezrou, Reda, Colette Audéon, Jérôme Compain, Sandrine Gélisse, Aurélie Ducasse, Cyrille Saintenac, Nicolas Lapalu et al. « A secreted protease-like protein in Zymoseptoria tritici is responsible for avirulence on Stb9 resistance gene in wheat ». PLOS Pathogens 19, no 5 (12 mai 2023) : e1011376. http://dx.doi.org/10.1371/journal.ppat.1011376.
Texte intégralValent, B., L. Farrall et F. G. Chumley. « Magnaporthe grisea genes for pathogenicity and virulence identified through a series of backcrosses. » Genetics 127, no 1 (1 janvier 1991) : 87–101. http://dx.doi.org/10.1093/genetics/127.1.87.
Texte intégralWebb, Craig A., et John P. Fellers. « Cereal rust fungi genomics and the pursuit of virulence and avirulence factors ». FEMS Microbiology Letters 264, no 1 (novembre 2006) : 1–7. http://dx.doi.org/10.1111/j.1574-6968.2006.00400.x.
Texte intégralBeams, Alexander B., Rebecca Bateman et Frederick R. Adler. « Will SARS-CoV-2 Become Just Another Seasonal Coronavirus ? » Viruses 13, no 5 (7 mai 2021) : 854. http://dx.doi.org/10.3390/v13050854.
Texte intégralBonshtien, Arale, Atar Lev, Avi Gibly, Paul Debbie, Adi Avni et Guido Sessa. « Molecular Properties of the Xanthomonas AvrRxv Effector and Global Transcriptional Changes Determined by Its Expression in Resistant Tomato Plants ». Molecular Plant-Microbe Interactions® 18, no 4 (avril 2005) : 300–310. http://dx.doi.org/10.1094/mpmi-18-0300.
Texte intégralThèses sur le sujet "Avirulence factors"
Win, Joe. « Molecular Quest for Avirulence Factors in Venturia inaequalis ». Thesis, University of Auckland, 2004. http://hdl.handle.net/2292/397.
Texte intégralDvorak, Etienne. « Bases génomiques de l’adaptation du mildiou aux résistances de la vigne : vers l’identification de gènes d’avirulence par une approche de génétique quantitative ». Electronic Thesis or Diss., Bordeaux, 2024. http://www.theses.fr/2024BORD0361.
Texte intégralBreeding for resistant varieties is one of the most efficient approach to control plant diseases, but the adaptation of pathogen populations limits their durability. The causal agent of grapevine downy mildew, the oomycete Plasmopara viticola, has demonstrated the ability to rapidly overcome several resistance factors recently deployed in Europe. Grapevine resistances to downy mildew are strong but partial, which raises the question of the mechanisms of pathogen virulence in this phenotypically quantitative interaction. A QTL mapping approach was used to identify the genetic determinants of P. viticola adaptation to three grapevine resistance factors: Rpv3.1, Rpv10 and Rpv12. Two crosses were made between downy mildew strains with contrasting virulence profiles. These progenies were genotyped by targeted sequencing of 5263 SNPs. The construction of high-density linkage maps enabled a pseudo-assembly of the genome at the chromosome level (2n=34). Some offspring carry karyotypic abnormalities (aneuploidies, triploidies) that originate almost exclusively from the male gamete, via several mechanisms (diploid gametes, dispermy). By phenotyping the interaction between these progenies and different grapevine cultivars (sporulation, necrosis), a major QTL was detected for each virulence. A candidate locus for AvrRpv12 was identified, containing several putative RXLR effector genes absent or non-functional in the virulent alleles. This resistance breakdown is consistent with a gene-for-gene relationship in which virulence is recessive. In the case of Rpv10, an atypical genetic determinism was observed. Resistance breakdown is partial and dominant, which strongly suggests an avirulence suppressor mechanism. The QTL detected corresponds to a 537 kb interval that is poorly recombinant and highly enriched in secreted protein genes. A haplotype-aware assembly of the parent strain revealed major structural rearrangements and variation in the repertoire of putative effectors in the virulent haplotype. Study of a backcross population confirms the dominance of this avirulence suppressor allele. Analysis of the genetic structure of a panel of isolates suggests several independent events with regard to Rpv12 breakdown. In contrast, virulence against Rpv10 probably has a unique origin linked to the recent introduction of a non-European genetic background. The position of the AvrRpv3.1 locus, previously identified by GWAS, was confirmed. The sequencing of around a hundred P. viticola isolates revealed a wide diversity of Rpv3.1 bypass alleles in Europe. This diversity may be linked to the long-standing distribution of hybrid grape varieties carrying Rpv3.1, before their areas were drastically reduced in the mid-twentieth century. A molecular tool has been developed to monitor the presence-absence of AvrRpv3.1 effectors by qPCR. This tool makes high-throughput monitoring of mildew populations possible. Taken together, these results improve our understanding of the mechanisms by which P. viticola adapts to grapevine resistances. They also pave the way for the functional characterization of new oomycete effectors. Finally, monitoring the evolutionary dynamics of the genes involved will inform the design of better deployment strategies for resistant grapevines
Chapitres de livres sur le sujet "Avirulence factors"
Ben-Nathan, D., S. Lustig et G. Feuerstein. « The Effect of Cold or Isolation Stress on Neuroinvasiveness and Neurovirulence of an Avirulent Variant of West Nile Virus (WN-25) ». Dans Psychiatry and Biological Factors, 295–306. Boston, MA : Springer US, 1991. http://dx.doi.org/10.1007/978-1-4684-5811-4_27.
Texte intégralMyers, Gerald, Kersti Maclnnes, et Lynda Myers. « Phylogenetic Moments in the AIDS Epidemic ». Dans Emerging Viruses, 120–37. Oxford University PressNew York, NY, 1993. http://dx.doi.org/10.1093/oso/9780195074444.003.0012.
Texte intégralRapports d'organisations sur le sujet "Avirulence factors"
Sessa, Guido, et Gregory Martin. A functional genomics approach to dissect resistance of tomato to bacterial spot disease. United States Department of Agriculture, janvier 2004. http://dx.doi.org/10.32747/2004.7695876.bard.
Texte intégralZhao, Bingyu, Saul Burdman, Ronald Walcott, Tal Pupko et Gregory Welbaum. Identifying pathogenic determinants of Acidovorax citrulli toward the control of bacterial fruit blotch of cucurbits. United States Department of Agriculture, janvier 2014. http://dx.doi.org/10.32747/2014.7598168.bard.
Texte intégralSessa, Guido, et Gregory Martin. Role of GRAS Transcription Factors in Tomato Disease Resistance and Basal Defense. United States Department of Agriculture, 2005. http://dx.doi.org/10.32747/2005.7696520.bard.
Texte intégralHorwitz, Benjamin A., et Barbara Gillian Turgeon. Fungal Iron Acquisition, Oxidative Stress and Virulence in the Cochliobolus-maize Interaction. United States Department of Agriculture, mars 2012. http://dx.doi.org/10.32747/2012.7709885.bard.
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