Page 61 - Read Online
P. 61

Page 14 of 16              Stuehler et al. Microbiome Res Rep. 2025;4:19  https://dx.doi.org/10.20517/mrr.2024.84

               Conflicts of interest
               All authors declared that there are no conflicts of interest.


               Ethical approval and consent to participate
               Not applicable.


               Consent for publication
               Not applicable.


               Copyright
               © The Author(s) 2025.


               REFERENCES
               1.       Russell DN, Qureshi JA, Halbert SE, Stansly PA. Host suitability of citrus and Zanthoxylum spp. for Leuronota fagarae burckhardt
                   and Diaphorina citri kuwayama (Hemiptera: Psylloidea). Fla Entomol. 2014;97:1481-92.  DOI
               2.       Burckhardt D. Jumping plant lice (Homoptera: Psylloidea) of the temperate neotropical region. Part 3: calophyidae and triozidae. Zool
                   J Linn Soc. 1988;92:115-91.  DOI
               3.       Chrostek E, Pelz-Stelinski K, Hurst GDD, Hughes GL. Horizontal transmission of intracellular insect symbionts via plants. Front
                   Microbiol. 2017;8:2237.  DOI  PubMed  PMC
               4.       Sintupachee S, Milne JR, Poonchaisri S, Baimai V, Kittayapong P. Closely related Wolbachia strains within the pumpkin arthropod
                   community and the potential for horizontal transmission via the plant. Microb Ecol. 2006;51:294-301.  DOI  PubMed
               5.       Hoffmann AA, Cooper BS. Describing endosymbiont-host interactions within the parasitism-mutualism continuum. Ecol Evol.
                   2024;14:e11705.  DOI  PubMed  PMC
               6.       Baumann P. Biology bacteriocyte-associated endosymbionts of plant sap-sucking insects. Annu Rev Microbiol. 2005;59:155-89.  DOI
                   PubMed
               7.       Benlarbi M, Ready PD. Host-specific Wolbachia strains in widespread populations of Phlebotomus perniciosus and P. papatasi
                   (Diptera: Psychodidae), and prospects for driving genes into these vectors of Leishmania. Bull Entomol Res. 2003;93:383-91.  DOI
                   PubMed
               8.       Charlesworth J, Weinert LA, Araujo EV Jr, Welch JJ. Wolbachia, Cardinium and climate: an analysis of global data. Biol Lett.
                   2019;15:20190273.  DOI  PubMed  PMC
               9.       Hague MTJ, Caldwell CN, Cooper BS. Divergent effects of Wolbachia on host temperature preference. bioRxiv 2020. Available from:
                   http://biorxiv.org/lookup/doi/10.1101/2020.06.11.146977. [Last accessed on 31 Mar 2025]
               10.      Werren JH, Baldo L, Clark ME. Wolbachia: master manipulators of invertebrate biology. Nat Rev Microbiol. 2008;6:741-51.  DOI
                   PubMed
               11.      Manthey JD, Girón JC, Hruska JP. Impact of host demography and evolutionary history on endosymbiont molecular evolution: a test
                   in carpenter ants (genus Camponotus) and their Blochmannia endosymbionts. Ecol Evol. 2022;12:e9026.  DOI  PubMed  PMC
               12.      Bontemps Z, Paranjape K, Guy L. Host-bacteria interactions: ecological and evolutionary insights from ancient, professional
                   endosymbionts. FEMS Microbiol Rev. 2024;48:fuae021.  DOI  PubMed  PMC
               13.      Kraus S, Monchanin C, Gomez-Moracho T, Lihoreau M. Insect diet. In: Vonk J, Shackelford T, editors. Encyclopedia of animal
                   cognition and behavior. Cham: Springer International Publishing; 2019. p. 1-9.  DOI
               14.      Douglas AE. Microbial nutrient factories in insects on extreme diets. Comptes Rendus Biol. 2019;342:260.  DOI
               15.      Fagen JR, Giongo A, Brown CT, Davis-Richardson AG, Gano KA, Triplett EW. 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. Open Microbiol J. 2012;6:29-33.  DOI  PubMed  PMC
               16.      Zug R, Hammerstein P. Still a host of hosts for Wolbachia: analysis of recent data suggests that 40% of terrestrial arthropod species are
                   infected. PLoS One. 2012;7:e38544.  DOI  PubMed  PMC
               17.      Roldán  EL,  Stelinski  LL,  Pelz-Stelinski  KS.  Reduction  of  Wolbachia  in  Diaphorina  citri  (Hemiptera:  Liviidae)  increases
                   phytopathogen acquisition and decreases fitness. J Econ Entomol. 2024;117:733-49.  DOI
               18.      Bi J, Wang YF. The effect of the endosymbiont Wolbachia on the behavior of insect hosts. Insect Sci. 2020;27:846-58.  DOI  PubMed
                   PMC
               19.      Saucereau Y, Valiente Moro C, Dieryckx C, et al. Comprehensive proteome profiling in Aedes albopictus to decipher Wolbachia-
                   arbovirus interference phenomenon. BMC Genomics. 2017;18:635.  DOI  PubMed  PMC
               20.      Yuan LL, Chen X, Zong Q, et al. Quantitative proteomic analyses of molecular mechanisms associated with cytoplasmic
                   incompatibility in Drosophila melanogaster induced by Wolbachia. J Proteome Res. 2015;14:3835-47.  DOI
               21.      Guo Y, Hoffmann AA, Xu XQ, et al. Vertical transmission of Wolbachia is associated with host vitellogenin in Laodelphax striatellus.
                   Front Microbiol. 2018;9:2016.  DOI  PubMed  PMC
   56   57   58   59   60   61   62   63   64   65   66