Publications
681
| Citation | Title | ||
|---|---|---|---|
| Sun et al., 2024, Phytopathology® | Identification and Characterization of Polyamine Metabolism in Citrus in Response to ‘Candidatus Liberibacter asiaticus’ Infection | ||
| De Leon et al., 2024, Plant Disease | Diversity of ‘Candidatus Liberibacter asiaticus’ Strains in Texas Revealed by Prophage Sequence Analyses | ||
| Huang et al., 2024, Plant Disease | An Inhibitor-Monitorable Single-Tube Duplex Quantitative Real-Time PCR Assay for the Detection of ‘Candidatus Liberibacter asiaticus’ | ||
| Pandey et al., 2024, Phytopathology® | Dynamics of ‘Candidatus Liberibacter asiaticus’ Growth, Concentrations of Reactive Oxygen Species, and Ion Leakage in Huanglongbing-Positive Sweet Orange | ||
| Li et al., 2024, Plant Cell Reports | Three new discovery effector proteins from Candidatus Liberibacter asiaticus psy62 inhibit plant defense through interaction with AtCAT3 and AtGAPA | ||
| Tardivo et al., 2024, HortScience | Root System Reductions of Grafted ‘Valencia’ Orange Trees Are More Extensive Than Aboveground Reductions after Natural Infection with Candidatus Liberibacter Asiaticus | ||
| Chaves-Sierra et al., 2024, Plant Disease | Identification of ‘Candidatus Liberibacter asiaticus’, the Huanglongbing Bacterium, in Citrus from Colombia | ||
| Liu et al., 2024, Protoplasma | Transcriptome analysis of Citrus sinensis reveals potential responsive events triggered by Candidatus Liberibacter asiaticus | ||
| Aksenov et al., 2024, | Spatial chemistry of citrus reveals molecules bactericidal to Candidatus Liberibacter asiaticus | ||
| Aksenov et al., 2024, | Spatial chemistry of citrus reveals molecules bactericidal toCandidatusLiberibacter asiaticus |