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Authors Holford

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Holford, Paul


Publications
24

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CitationNamesAbstract
Draft Genome Sequence of a Novel “ Candidatus Liberibacter” Species Detected in a Zanthoxylum Species from Bhutan Chambers et al. (2020). Microbiology Resource Announcements 9 (40) Liberibacter
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Host and environmental factors influencing ‘ Candidatus Liberibacter asiaticus’ acquisition in Diaphorina citri Wu et al. (2018). Pest Management Science 74 (12) Ca. Liberibacter asiaticus
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Phylogeography of <scp> Diaphorina citri </scp> (Hemiptera: Liviidae) and its primary endosymbiont, ‘ Candidatus Carsonella ruddii’: an evolutionary approach to host–endosymbiont interaction Wang et al. (2018). Pest Management Science 74 (9) Ca. Carsonella ruddii
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Lower Concentrations of Microelements in Leaves of Citrus Infected with 'Candidatus Liberibacter asiaticus' Masaoka et al. (2011). Japan Agricultural Research Quarterly: JARQ 45 (3) Ca. Liberibacter asiaticus
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Draft Genome Sequence of a Novel “ Candidatus Liberibacter” Species Detected in a Zanthoxylum Species from Bhutan
The draft genome sequence of a novel “ Candidatus Liberibacter” species detected in an unidentified species of Zanthoxylum (Rutaceae) collected in Bhutan is reported. The total length is 1,408,989 bp with 1,169 coding sequences in 96 contigs, a GC content of 37.3%, and 76 to 77% average nucleotide identity with several other “ Ca . Liberibacter” species.
Host and environmental factors influencing ‘ Candidatus Liberibacter asiaticus’ acquisition in Diaphorina citri
Abstract Background Diaphorina citri is a vector of ‘ Candidatus Liberibacter asiaticus’ (CLas) associated with citrus Huanglongbing. In this study, the infection and titers of CLas in the psyllid, were monitored for life cycle stage, sex, host‐plant CLas titer, host‐plant genotype, and ambient temperature. Results Acquisition efficiency of CLas by D. citri was highest in nymphs reared at 25 °C on a host plant with high CLas titers but was independent of the host genotypes assessed and of vector sex. We further observed that D. citri nymphs acquired CLas more rapidly than adults based on acquisition access periods (AAPs). CLas did not multiply in the alimentary canal, hemolymph, and salivary glands of adults for 18 days after a 3‐day AAP as adult. However, CLas multiplication was detected in hemolymph and salivary gland of adults after the bacterium was acquired by nymphs. Eighty percent of salivary glands of adults contained CLas 18 days after a 3‐day AAP as nymph compared to 10% 18 days after a 3‐day AAP as adults. Conclusion Different factors tested herein influenced CLas acquisition efficiency of D. citri , CLas multiplication and spread inside the psyllid. These observations serve to better understand mechanisms of CLas infection in D. citri . © 2018 Society of Chemical Industry
Phylogeography of <scp> Diaphorina citri </scp> (Hemiptera: Liviidae) and its primary endosymbiont, ‘ Candidatus Carsonella ruddii’: an evolutionary approach to host–endosymbiont interaction
Abstract BACKGROUND In insects, little is known about the co‐evolution between their primary endosymbionts and hosts at the intraspecific level. This study examined co‐diversification between the notorious agricultural pest Diaphorina citri and its primary endosymbionts (P‐endosymbiont), ‘ Candidatus Carsonella ruddii’ at the population level. RESULTS Maximum likelihood, haplotype network, principal components and Bayesian clustering identified three lineages for D. citri and its P‐endosymbiont: a Western clade containing individuals from Pakistan, Bhutan (Phuentsholing), Vietnam (Son La), USA, Myanmar and China (Ruili, Yunnan); a Central clade, with accessions originating from Southwest China, Bhutan (Tsirang) and Bangladesh; and an Eastern clade containing individuals from Southeast Asia, and East and South China. A more diverse genetic structure was apparent in the host mitochondrial DNA than their P‐endosymbionts; however, the two sets of data were strongly congruent. CONCLUSION This study provides evidence for the co‐diversification of D. citri and its P‐endosymbiont during the migration from South Asia to East and Southeast Asia. We also suggest that the P‐endosymbiont may facilitate investigations into the genealogy and migration history of the host. The biogeography of D. citri and its P‐endosymbiont indicated that D. citri colonized and underwent a secondary dispersal from South Asia to East and Southeast Asia. © 2018 Society of Chemical Industry
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