Differential gene expression analyses of ten defence response genes during Fusarium wilt infection in resistant and susceptible pigeonpea cultivars
Tài liệu tham khảo
Alessandra, 2012, Resistant and susceptible maize genotypes activate different transcriptional responses against Fusarium verticillioides, Physiol. Mol. Plant Pathol., 77, 52, 10.1016/j.pmpp.2011.12.002
Cho, 2005, Constitutive expression of the Flavanone 3-hydroxylase gene related to pathotype specific Ascochyta blight resistance in Cicer arietinum L, Physiol. Mol. Plant Pathol., 67, 100, 10.1016/j.pmpp.2005.09.011
Croft, 1993, Volatile products of the lipoxygenase pathway evolved from Phaseolus vulgaris L. leaves inoculated with Pseudomonas syringae pv. phaseolicola, Plant Physiol., 101, 13, 10.1104/pp.101.1.13
Edreva, 2007, Phenylamides in plants, Russ. J. Plant Physiol., 54, 289, 10.1134/S1021443707030016
Feussner, 2002, The lipoxygenase pathway, Annu. Rev. Plant Biol., 53, 275, 10.1146/annurev.arplant.53.100301.135248
García-Limones, 2009, Changes in the redox status of chickpea roots in response to infection by Fusarium oxysporum f. sp. ciceris: apoplastic antioxidant enzyme activities and expression of oxidative stress-related genes, Plant Biol., 11, 194, 10.1111/j.1438-8677.2008.00095.x
Garg, 2010, Validation of internal control genes for quantitative gene expression studies in chickpea (Cicer arietinum L.), Biochem. Biophys. Res. Commun., 396, 283, 10.1016/j.bbrc.2010.04.079
Gill, 2010, Reactive oxygen species and antioxidant machinery in abiotic stress tolerance in crop plants, Plant Physiol. Biochem., 48, 909, 10.1016/j.plaphy.2010.08.016
Gonzalez, 2013, Characterization of two PR genes from Fragaria chiloensis in response to Botrytis cinerea infection: a comparison with Fragaria x ananassa, Physiol. Mol. Plant Pathol., 82, 73, 10.1016/j.pmpp.2013.02.001
Gurjar, 2012, Gene expression profiling during wilting in chickpea caused by Fusarium oxysporum f. sp. ciceri, Am. J. Plant Sci., 3, 190, 10.4236/ajps.2012.32023
Hussain, 2018, Identification, characterization and expression analysis of pigeonpea miRNAs in response to Fusarium wilt, Gene, 653, 57, 10.1016/j.gene.2018.02.017
Hussain, 2011, Polyamines: natural and engineered abiotic and biotic stress tolerance in plants, Biotechnol. Adv., 29, 300, 10.1016/j.biotechadv.2011.01.003
Jadhav, 2013, Expression analysis of key genes of phenylpropanoid pathway and phenol profiling during Ricinus communis-Fusarium oxysporum f. sp. ricini interaction, Ind. Crops Prod., 50, 456, 10.1016/j.indcrop.2013.08.022
Jimenez-Bremont, 2014, Physiological and molecular implications of plant polyamine metabolism during biotic interactions, Front. Plant Sci., 5, 1
Kavousi, 2009, Expression of phenylpropenoid genes in chickpea defense against race 3 of Ascochytha rabiei, Plant Pathol. J., 8, 127, 10.3923/ppj.2009.127.132
Kim, 2014, An important role of the pepper phenylalanine ammonia-lyase gene (PAL1) in salicylic acid-dependent signaling of the defense response to microbial pathogens, J. Exp. Bot., 65, 2295, 10.1093/jxb/eru109
Liu, 2007, Polyamines and their ability to provide environmental stress tolerance to plants, Plant Biotechnol., 24, 117, 10.5511/plantbiotechnology.24.117
Liu, 2010, The effect of the rice blast resistance gene Pi36 on the expression of disease resistance-related genes, Chin. Sci. Bull., 55, 1881, 10.1007/s11434-010-3264-7
Livak, 2001, Analysis of relative gene expression data using real-time quantitative PCR and the 2−∆∆Ct method, Methods, 25, 402, 10.1006/meth.2001.1262
Ma, 2013, Expression stabilities of candidate reference genes for RT-qPCR under different stress conditions in soybean, PLoS ONE, 8, 1
Mandal, 2013, Root anatomical parameters for identification of Fusarium wilt resistant and susceptible lines of pigeonpea, Indian Phytopathol., 66, 361
Mhaske, 2013, Polyamine metabolism and lipoxygenase activity during Fusarium oxysporum f. sp. ricini-Castor interaction, Physiol. Mol. Biol. Plants, 19, 323, 10.1007/s12298-013-0172-8
Mhaske, 2013, Castor (Ricinus communis L.) Rc-LOX5 plays important role in wilt resistance, Ind. Crops Prod., 45, 20, 10.1016/j.indcrop.2012.11.035
Mitsuya, 2009, Spermine signaling plays a significant role in the defense response of Arabidopsis thaliana to cucumber mosaic virus, J. Plant Physiol., 166, 626, 10.1016/j.jplph.2008.08.006
Mohammadi, 2012, Study on expression pattern of chalcone synthase and β-1-3 glucanase under septoria tritici treatment in wheat by quantitative real time PCR, Am. Eurasian J. Agric. Environ. Sci., 12, 1431
Montillet, 2002, Fatty acid hydroperoxides and H2O2 in the execution of hypersensitive cell death in tobacco leaves, Plant Physiol., 138, 1516, 10.1104/pp.105.059907
Pal, 2011, Changes in salicylic acid and polyamine contents following powdery mildew infection of near-isogenic Thatcher-based wheat lines carrying different Lr genes, Acta Biol. Szeged., 55, 139
Pande, 2013, An updated review of biology, pathogenicity, epidemiology and management of wilt disease of pigeonpea (Cajanus cajan (L.) Millsp.), J. Food Legumes, 26, 1
Parmar, 2015, Evaluation of pigeonpea genotypes for resistance to Fusarium wilt, Plant Arch., 15, 1013
Prabhavathi, 2007, Polyamine accumulation in transgenic eggplant enhances tolerance to multiple abiotic stresses and fungal resistance, Plant Biotechnol., 24, 273, 10.5511/plantbiotechnology.24.273
Reddy, 2013, Evaluation and validation of reference genes for normalization of quantitative real-time PCR based gene expression studies in peanut, PLoS ONE, 8, 1, 10.1371/journal.pone.0078555
Romero-Puertas, 2004, Nitric oxide signaling functions in plants-pathogen interaction, Cell Microbiol., 6, 795, 10.1111/j.1462-5822.2004.00428.x
Saabale, 2012, Quantitative analysis of defense related genes of chickpea against Fusarium wilt, Bioinfolet, 9, 722
Sayari, 2014, Expression of the pathogenesis related proteins, NH-1, PAL and lipoxygenase in the Iranian Tarom and Khazar rice cultivars, in reaction to Rhizoctonia solani the causal agent of rice sheath blight, J. Plant Prot. Res., 54, 36, 10.2478/jppr-2014-0006
Schipper, 2000, Involvement of polyamines in apoptosis, facts and controversies: effectors or protectors, Semin. Cancer Biol., 10, 55, 10.1006/scbi.2000.0308
Sestili, 2011, Distinct colonization patterns and cDNA-AFLP transcriptome profiles in compatible and incompatible interactions between melon and different races of Fusarium oxysporum f.sp. Melonis, BMC Genom., 12, 122, 10.1186/1471-2164-12-122
Sharma, 2016, Environmental influences on pigeonpea-Fusarium udum interactions and stability of genotypes to Fusarium wilt, Front. Plant Sci., 7, 1, 10.3389/fpls.2016.00253
Soria-Guerra, 2010, Transcriptome analysis of resistant and susceptible genotypes of Glycine tomentella during Phakopsora pachyrhizi infection reveals novel rust resistance genes, Theor. Appl. Genet., 120, 1315, 10.1007/s00122-009-1258-0
Stevenson, 1997, Phytoalexin accumulation in the roots of chickpea (Cicer arietinum L.) seedlings associated with resistance to Fusarium wilt (Fusarium oxysporum f.sp. ciceri), Physiol. Mol. Plant Pathol., 50, 167, 10.1006/pmpp.1997.0082
Upchurch, 2010, Defense-related gene expression in soybean leaves and seeds inoculated with Cercospora kikuchii and Diaporthe phaseolorum var. meridionalis, Physiol. Mol. Plant. Pathol., 75, 64, 10.1016/j.pmpp.2010.08.007
Walters, 2003, Resistance to plant pathogens: possible roles for free polyamines and polyamine catabolism, New Phytol., 159, 109, 10.1046/j.1469-8137.2003.00802.x
Weber, 1999, Divinyl ether fatty acid synthesis in late blight-diseased potato leaves, Plant Cell, 11, 485
Yamasaki, 2006, NO signal at the crossroads: polyamine induced nitric oxide synthesis in plants, Trends Plant Sci., 11, 522, 10.1016/j.tplants.2006.09.009
Zabala, 2006, Transcriptome changes in the phenylpropanoid pathway of Glycine max in response to Pseudomonas syringae infection, BMC Plant Biol., 6, 26, 10.1186/1471-2229-6-26