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Diaphorina citri flavi-like virus localization, transmission, and association with Candidatus Liberibacter asiaticus in its psyllid host |
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| Om et al., 2022, Journal of Applied Entomology |
Diaphorina communis: Molecular identification, development on Citrus reticulata, and acquisition and transmission of ‘Candidatus Liberibacter asiaticus’ |
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| Gaire et al., 2022, Crop Protection |
Individual protective covers (IPCs) to prevent Asian citrus psyllid and Candidatus Liberibacter asiaticus from establishing in newly planted citrus trees |
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| Wang et al., 2022, Plant Biotechnology Journal |
Novel insight into the distribution and dissemination of Candidatus Liberibacter asiaticus, the causal agent of citrus Huanglongbing |
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| Higgins et al., 2022, |
Direct DNA sequencing of ‘Candidatus Liberibacter asiaticus’ from Diaphorina citri, the Asian citrus psyllid, and its implications for citrus greening disease management |
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| Munir et al., 2022, Frontiers in Plant Science |
Defeating Huanglongbing Pathogen Candidatus Liberibacter asiaticus With Indigenous Citrus Endophyte Bacillus subtilis L1-21 |
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| Merfa et al., 2022, Phytopathology® |
Probing the Application of OmpA-Derived Peptides to Disrupt the Acquisition of ‘Candidatus Liberibacter asiaticus’ by Diaphorina citri |
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| Lin et al., 2022, Phytopathology® |
Intracellular Life Cycle of ‘CandidatusLiberibacter asiaticus’ Inside Psyllid Gut Cells |
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| Gasparoto et al., 2022, Phytopathology® |
Prevalent Transmission of ‘Candidatus Liberibacter asiaticus’ over ‘Ca. Liberibacter americanus’ in a Long-Term Controlled Environment |
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| Ramsey et al., 2022, Phytopathology® |
Host Plant Adaptation Drives Changes inDiaphorina citriProteome Regulation, Proteoform Expression, and Transmission of ‘CandidatusLiberibacter asiaticus’, the Citrus Greening Pathogen |
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