Xylella fastidiosa induces differential expression of lignification related-genes and lignin accumulation in tolerant olive trees cv. Leccino.
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Andrea Luvisi | Erika Sabella | Luigi De Bellis | A. Luvisi | M. Vergine | E. Sabella | L. De Bellis | Alessio Aprile | Carmine Negro | Marzia Vergine | Francesca Nicolì | Antonio Miceli | Francesca Nicolì | A. Aprile | C. Negro | A. Miceli
[1] Andrea Luvisi,et al. Xylella fastidiosa subsp. pauca (CoDiRO strain) infection in four olive ( Olea europaea L.) cultivars: profile of phenolic compounds in leaves and progression of leaf scorch symptoms , 2017 .
[2] Andrea Luvisi,et al. Sustainable Management of Plant Quarantine Pests: The Case of Olive Quick Decline Syndrome , 2017 .
[3] L. Sebastiani,et al. Salt stress induces differential regulation of the phenylpropanoid pathway in Olea europaea cultivars Frantoio (salt-tolerant) and Leccino (salt-sensitive). , 2016, Journal of plant physiology.
[4] G. Martelli,et al. The current status of the quick decline syndrome of olive in southern Italy , 2015, Phytoparasitica.
[5] P. Hatzopoulos,et al. Transcriptional profiling unravels potential metabolic activities of the olive leaf non-glandular trichome , 2015, Front. Plant Sci..
[6] I. Granlund,et al. The cell biology of lignification in higher plants. , 2015, Annals of botany.
[7] B. Bouchet,et al. Immunolabelling of intervessel pits for polysaccharides and lignin helps in understanding their hydraulic properties in Populus tremula × alba. , 2015, Annals of botany.
[8] Phaeoacremonium species associated with olive wilt and decline in southern Italy , 2015, European Journal of Plant Pathology.
[9] G. Martelli,et al. BRIEF HISTORICAL ACCOUNT OF OLIVE LEAF SCORCH (“BRUSCA”) IN THE SALENTO PENINSULA OF ITALY AND STATE-OF-THE-ART OF THE OLIVE QUICK DECLINE SYNDROME , 2014 .
[10] A. P. Ferro,et al. The Acetyl Bromide Method Is Faster, Simpler and Presents Best Recovery of Lignin in Different Herbaceous Tissues than Klason and Thioglycolic Acid Methods , 2014, PloS one.
[11] M. T. Martín,et al. Development of SCAR Primers for PCR Assay to Detect Diplodia seriata , 2014, International scholarly research notices.
[12] A. Gómez-Caravaca,et al. Determination of phenolic compounds of ‘Sikitita’ olive leaves by HPLC-DAD-TOF-MS. Comparison with its parents ‘Arbequina’ and ‘Picual’ olive leaves , 2014 .
[13] W. Boerjan,et al. The role of the secondary cell wall in plant resistance to pathogens , 2014, Front. Plant Sci..
[14] D. Loqué,et al. Histochemical staining of Arabidopsis thaliana secondary cell wall elements. , 2014, Journal of visualized experiments : JoVE.
[15] Kabir P. Tumber,et al. Pierce's disease costs California $104 million per year , 2014 .
[16] A. Wallingford,et al. Grapevine rootstock effects on scion sap phenolic levels, resistance to Xylella fastidiosa infection, and progression of Pierce's disease , 2013, Front. Plant Sci..
[17] G. P. Martelli,et al. IDENTIFICATION OF DNA SEQUENCES RELATED TO XYLELLA FASTIDIOSA IN OLEANDER, ALMOND AND OLIVE TREES EXHIBITING LEAF SCORCH SYMPTOMS IN APULIA (SOUTHERN ITALY) , 2013 .
[18] M. Talón,et al. The LOV Protein of Xanthomonas citri subsp. citri Plays a Significant Role in the Counteraction of Plant Immune Responses during Citrus Canker , 2013, PloS one.
[19] Amani Taamalli,et al. Characterisation of phenolic compounds by HPLC-TOF/IT/MS in buds and open flowers of 'Chemlali' olive cultivar. , 2013, Phytochemical analysis : PCA.
[20] J. Lozano-Sánchez,et al. HPLC-ESI-QTOF-MS as a powerful analytical tool for characterising phenolic compounds in olive-leaf extracts. , 2013, Phytochemical analysis : PCA.
[21] S. Koundouras,et al. Effect of water deficit on leaf phenolic composition, gas exchange, oxidative damage and antioxidant activity of four Greek olive (Olea europaea L.) cultivars. , 2012, Plant physiology and biochemistry : PPB.
[22] M. Servili,et al. Olive phenolic compounds: metabolic and transcriptional profiling during fruit development , 2012, BMC Plant Biology.
[23] Jianchi Chen,et al. Grapevine phenolic compounds in xylem sap and tissues are significantly altered during infection by Xylella fastidiosa. , 2012, Phytopathology.
[24] A. Scaloni,et al. Molecular interactions between the olive and the fruit fly Bactrocera oleae , 2012, BMC Plant Biology.
[25] María T. Martín,et al. Real-Time PCR Detection of Phaeomoniella chlamydospora and Phaeoacremonium aleophilum , 2012, Applied and Environmental Microbiology.
[26] S. Koike,et al. Development of an assay for rapid detection and quantification of Verticillium dahliae in soil. , 2012, Phytopathology.
[27] D. Arráez-Román,et al. Optimization of microwave-assisted extraction for the characterization of olive leaf phenolic compounds by using HPLC-ESI-TOF-MS/IT-MS(2). , 2012, Journal of agricultural and food chemistry.
[28] J. Tregear,et al. SSR markers in transcripts of genes linked to post-transcriptional and transcriptional regulatory functions during vegetative and reproductive development of Elaeis guineensis , 2012, BMC Plant Biology.
[29] Lili Tu,et al. Lignin metabolism has a central role in the resistance of cotton to the wilt fungus Verticillium dahliae as revealed by RNA-Seq-dependent transcriptional analysis and histochemistry , 2011, Journal of experimental botany.
[30] M. Matthews,et al. Xylem structure of four grape varieties and 12 alternative hosts to the xylem-limited bacterium Xylella fastidious. , 2011, Annals of botany.
[31] M. Medina. Determination of the total phenolics in juices and superfruits by a novel chemical method , 2011 .
[32] J. Labavitch,et al. Polysaccharide Compositions of Intervessel Pit Membranes Contribute to Pierce’s Disease Resistance of Grapevines1[OA] , 2011, Plant Physiology.
[33] J. Irwin,et al. Development of a DNA-based method for detection and identification of Phytophthora species , 2006, Australasian Plant Pathology.
[34] S. Lindow,et al. Assessment of the process of movement of Xylella fastidiosa within susceptible and resistant grape cultivars. , 2011, Phytopathology.
[35] L. Ward,et al. Development of LAMP and real-time PCR methods for the rapid detection of Xylella fastidiosa for quarantine and field applications. , 2010, Phytopathology.
[36] F. Pomar,et al. The Ve-mediated resistance response of the tomato to Verticillium dahliae involves H2O2, peroxidase and lignins and drives PAL gene expression , 2010, BMC Plant Biology.
[37] D. Arráez-Román,et al. Qualitative screening of phenolic compounds in olive leaf extracts by hyphenated liquid chromatography and preliminary evaluation of cytotoxic activity against human breast cancer cells , 2010, Analytical and bioanalytical chemistry.
[38] M. De Loose,et al. Validation of reference genes for gene expression analysis in chicory (Cichorium intybus) using quantitative real-time PCR , 2010, BMC Molecular Biology.
[39] L. Tian,et al. Antibacterial Activity of Phenolic Compounds Against the Phytopathogen Xylella fastidiosa , 2009, Current Microbiology.
[40] J. Peragón,et al. The response of phenylalanine ammonia-lyase, polyphenol oxidase and phenols to cold stress in the olive tree (Olea europaea L. cv. Picual) , 2009 .
[41] S. Nardi,et al. Esca in young and mature vineyards, and molecular diagnosis of the associated fungi , 2009, European Journal of Plant Pathology.
[42] Neil Boonham,et al. Development of protocols for detection of Colletotrichum acutatum and monitoring of strawberry anthracnose using real‐time PCR , 2009 .
[43] R. Raposo,et al. A biomarker for the identification of four Phaeoacremonium species using the β-tubulin gene as the target sequence , 2008, Applied Microbiology and Biotechnology.
[44] S. Hill,et al. Safranine fluorescent staining of wood cell walls , 2008, Biotechnic & histochemistry : official publication of the Biological Stain Commission.
[45] L. Hoffmann,et al. Housekeeping gene selection for real-time RT-PCR normalization in potato during biotic and abiotic stress. , 2005, Journal of experimental botany.
[46] A. Ferrante,et al. Towards a molecular strategy for improving harvesting of olives (Olea europaea L.) , 2004 .
[47] S. Tsai,et al. Detection and Diversity Assessment of Xylella fastidiosa in Field-Collected Plant and Insect Samples by Using 16S rRNA and gyrB Sequences , 2003, Applied and Environmental Microbiology.
[48] G. Schoch,et al. Chemical Inactivation of the Cinnamate 4-Hydroxylase Allows for the Accumulation of Salicylic Acid in Elicited Cells1 , 2002, Plant Physiology.
[49] D Roby,et al. Two cinnamoyl-CoA reductase (CCR) genes from Arabidopsis thaliana are differentially expressed during development and in response to infection with pathogenic bacteria. , 2001, Phytochemistry.
[50] S. O. Cacciola,et al. Collar and Root Rot of Olive Trees Caused by Phytophthora megasperma in Sicily. , 2001, Plant disease.
[51] V. Valpuesta,et al. A tomato peroxidase involved in the synthesis of lignin and suberin. , 2000, Plant physiology.
[52] R. Gucci,et al. Invited paper: Seasonal changes in the water relations of Mediterranean co‐occurring woody species , 1999 .
[53] D. Ohta,et al. Isolation of a cDNA and a Genomic Clone Encoding Cinnamate 4-Hydroxylase from Arabidopsis and Its Expression Manner in Planta , 1997, Plant physiology.
[54] K. Edwards,et al. A simple and rapid method for the preparation of plant genomic DNA for PCR analysis. , 1991, Nucleic acids research.
[55] R. Aloni,et al. The Role of Auxin and Gibberellin in Controlling Lignin Formation in Primary Phloem Fibers and in Xylem of Coleus blumei Stems. , 1990, Plant physiology.
[56] D. F. Cox,et al. Statistical Procedures for Agricultural Research. , 1984 .