Metabolic alterations in the nymphal instars of Diaphorina citri induced by Candidatus Liberibacter asiaticus, the putative pathogen of huanglongbing
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[1] R. Shatters,et al. Prolonged phloem ingestion by Diaphorina citri nymphs compared to adults is correlated with increased acquisition of citrus greening pathogen , 2018, Scientific Reports.
[2] N. Killiny,et al. A plant pathogenic bacterium exploits the tricarboxylic acid cycle metabolic pathway of its insect vector , 2017, Virulence.
[3] M. MacCoss,et al. Combining 'omics and microscopy to visualize interactions between the Asian citrus psyllid vector and the Huanglongbing pathogen Candidatus Liberibacter asiaticus in the insect gut , 2017, PloS one.
[4] N. Killiny,et al. Metabolomic Response to Huanglongbing: Role of Carboxylic Compounds in Citrus sinensis Response to 'Candidatus Liberibacter asiaticus' and Its Vector, Diaphorina citri. , 2017, Molecular plant-microbe interactions : MPMI.
[5] P. Trivedi,et al. 'Candidatus Liberibacter asiaticus' Encodes a Functional Salicylic Acid (SA) Hydroxylase That Degrades SA to Suppress Plant Defenses. , 2017, Molecular plant-microbe interactions : MPMI.
[6] N. Killiny,et al. Metabolomic analyses of the haemolymph of the Asian citrus psyllid Diaphorina citri, the vector of huanglongbing , 2017 .
[7] M. MacCoss,et al. Protein interaction networks at the host–microbe interface in Diaphorina citri, the insect vector of the citrus greening pathogen , 2017, Royal Society Open Science.
[8] Minoru Kanehisa,et al. KEGG: new perspectives on genomes, pathways, diseases and drugs , 2016, Nucleic Acids Res..
[9] N. Killiny. Metabolomic comparative analysis of the phloem sap of curry leaf tree (Bergera koenegii), orange jasmine (Murraya paniculata), and Valencia sweet orange (Citrus sinensis) supports their differential responses to Huanglongbing , 2016, Plant signaling & behavior.
[10] R. Shatters,et al. Acquisition, Replication and Inoculation of Candidatus Liberibacter asiaticus following Various Acquisition Periods on Huanglongbing-Infected Citrus by Nymphs and Adults of the Asian Citrus Psyllid , 2016, PloS one.
[11] Austin G. Davis-Richardson,et al. Identification of the Genes Required for the Culture of Liberibacter crescens, the Closest Cultured Relative of the Liberibacter Plant Pathogens , 2016, Front. Microbiol..
[12] N. Killiny,et al. Amino acids implicated in plant defense are higher in Candidatus Liberibacter asiaticus-tolerant citrus varieties , 2016, Plant signaling & behavior.
[13] Michael J. MacCoss,et al. Metabolic Interplay between the Asian Citrus Psyllid and Its Profftella Symbiont: An Achilles’ Heel of the Citrus Greening Insect Vector , 2015, PloS one.
[14] T. Fuchs,et al. The orphan regulator ReiD of Salmonella enterica is essential for myo‐inositol utilization , 2014, Molecular microbiology.
[15] Michael J. Davis,et al. Liberibacter crescens gen. nov., sp. nov., the first cultured member of the genus Liberibacter. , 2014, International journal of systematic and evolutionary microbiology.
[16] R. Almeida,et al. The exopolysaccharide of Xylella fastidiosa is essential for biofilm formation, plant virulence, and vector transmission. , 2013, Molecular plant-microbe interactions : MPMI.
[17] S. Colella,et al. Tyrosine pathway regulation is host-mediated in the pea aphid symbiosis during late embryonic and early larval development , 2013, BMC Genomics.
[18] J. Reyes-De-Corcuera,et al. GC-MS Analysis of Secondary Metabolites in Leaves from Orange Trees Infected with HLB: A 9-Month Course Study , 2012 .
[19] J. Riesgo-Escovar,et al. Carbohydrate Metabolism in Drosophila: Reliance on the Disaccharide Trehalose , 2012 .
[20] D. Stanley,et al. Eicosanoids: Exploiting Insect Immunity to Improve Biological Control Programs , 2012, Insects.
[21] Austin G. Davis-Richardson,et al. Characterization of the Relative Abundance of the Citrus Pathogen Ca. Liberibacter Asiaticus in the Microbiome of Its Insect Vector, Diaphorina citri, using High Throughput 16S rRNA Sequencing , 2012, The open microbiology journal.
[22] S. Hamby,et al. In Silico identification of pathogenic strains of Cronobacter from Biochemical data reveals association of inositol fermentation with pathogenicity , 2011, BMC Microbiology.
[23] M. McConville,et al. Inositol lipid metabolism in mycobacteria: biosynthesis and regulatory mechanisms. , 2011, Biochimica et biophysica acta.
[24] Petra R. A. Kohler,et al. Inositol Catabolism, a Key Pathway in Sinorhizobium meliloti for Competitive Host Nodulation , 2010, Applied and Environmental Microbiology.
[25] S. Villas-Bôas,et al. Analytical platform for metabolome analysis of microbial cells using methyl chloroformate derivatization followed by gas chromatography–mass spectrometry , 2010, Nature Protocols.
[26] T. Gottwald. Current epidemiological understanding of citrus Huanglongbing . , 2010, Annual review of phytopathology.
[27] L. Roesch,et al. Confirmation of the sequence of 'Candidatus Liberibacter asiaticus' and assessment of microbial diversity in Huanglongbing-infected citrus phloem using a metagenomic approach. , 2009, Molecular plant-microbe interactions : MPMI.
[28] Hua Lu. Dissection of salicylic acid-mediated defense signaling networks , 2009, Plant signaling & behavior.
[29] H. Doddapaneni,et al. Complete genome sequence of citrus huanglongbing bacterium, 'Candidatus Liberibacter asiaticus' obtained through metagenomics. , 2009, Molecular plant-microbe interactions : MPMI.
[30] T. Burr,et al. Grapevine xylem sap enhances biofilm development by Xylella fastidiosa. , 2009, FEMS microbiology letters.
[31] T. Reynolds,et al. Strategies for acquiring the phospholipid metabolite inositol in pathogenic bacteria, fungi and protozoa: making it and taking it , 2009, Microbiology.
[32] Michael J. Davis,et al. Co-cultivation of 'Candidatus Liberibacter asiaticus' with Actinobacteria from Citrus with Huanglongbing. , 2008, Plant disease.
[33] R. Michell. Evolution of the diverse biological roles of inositols. , 2007, Biochemical Society symposium.
[34] A. Douglas. Phloem-sap feeding by animals: problems and solutions. , 2006, Journal of experimental botany.
[35] J. Bové,et al. Huanglongbing: a destructive, newly-emerging, century-old disease of citrus [Asia; South Africa; Brazil; Florida] , 2006 .
[36] S. Halbert,et al. ASIAN CITRUS PSYLLIDS (STERNORRHYNCHA: PSYLLIDAE) AND GREENING DISEASE OF CITRUS: A LITERATURE REVIEW AND ASSESSMENT OF RISK IN FLORIDA , 2004 .
[37] Y. Kono,et al. High myo-inositol concentration in the hemolymph of planthoppers , 2003 .
[38] Ute Roessner,et al. Simultaneous analysis of metabolites in potato tuber by gas chromatography-mass spectrometry. , 2000 .
[39] J. Bové,et al. Detection and identification of the two Candidatus Liberobacter species associated with citrus huanglongbing by PCR amplification of ribosomal protein genes of the beta operon. , 1999, Molecular and cellular probes.
[40] N. Killiny. Metabolite signature of the phloem sap of fourteen citrus varieties with different degrees of tolerance to Candidatus Liberibacter asiaticus , 2017 .
[41] Wei Guo,et al. Glucose-6-phosphate dehydrogenase is required for extracellular polysaccharide production, cell motility and the full virulence of Xanthomonas oryzae pv. oryzicola. , 2015, Microbial pathogenesis.
[42] N. Killiny,et al. Viability of 'Candidatus Liberibacter asiaticus' prolonged by addition of citrus juice to culture medium. , 2014, Phytopathology.
[43] J. Bonnemain,et al. Transport of Salicylic Acid and Related Compounds , 2013 .
[44] E. L. Arrese,et al. Insect fat body: energy, metabolism, and regulation. , 2010, Annual review of entomology.
[45] B. Holub. Metabolism and function of myo-inositol and inositol phospholipids. , 1986, Annual review of nutrition.