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Raspberry ketone diet supplement reduces attraction of sterile male Queensland fruit fly to cuelure by altering expression of chemoreceptor genes

  • 1.

    Clarke, A. R., Powell, K. S., Weldon, C. W. & Taylor, P. W. The ecology of Bactrocera tryoni (Diptera: Tephritidae): What do we know to assist pest management?. Ann. Appl. Biol. 158, 26–54. https://doi.org/10.1111/j.1744-7348.2010.00448.x (2011).

    Article 

    Google Scholar 

  • 2.

    Jessup, A. J. et al. in Area-Wide Control of Insect Pests: From Research to Field Implementation (eds M. J. B. Vreysen, A. S. Robinson, & J. Hendrichs) 685–697 (Springer Netherlands, 2007).

  • 3.

    HIA. Australian Horticulture Statistics Handbook 2019/20. Horticulture Innovation Australia Limited (2020).

  • 4.

    Fanson, B. G., Sundaralingam, S., Jiang, L., Dominiak, B. C. & D’Arcy, G. A review of 16 years of quality control parameters at a mass-rearing facility producing Queensland fruit fly, Bactrocera tryoni. Entomol. Exp. Appl. 151, 152–159. https://doi.org/10.1111/eea.12180 (2014)

  • 5.

    Knipling, E. F. Possibilities of Insect Control or Eradication Through the Use of Sexually Sterile Males. J. Econ. Entomol. 48, 459–462. https://doi.org/10.1093/jee/48.4.459 (1955).

    Article 

    Google Scholar 

  • 6.

    Shelly, T. & McInnis, D. Sterile Insect Technique and Control of Tephritid Fruit Flies: Do Species With Complex Courtship Require Higher Overflooding Ratios?. Ann. Entomol. Soc. Am. 109, 1–11. https://doi.org/10.1093/aesa/sav101 (2015).

    CAS 
    Article 

    Google Scholar 

  • 7.

    Hendrichs, J. & Robinson, A. in Encyclopedia of Insects (Second Edition) (eds Vincent H. Resh & Ring T. Cardé) 953–957 (Academic Press, 2009).

  • 8.

    Dominiak, B., Clifford, C. S. & Nielsen, S. G. Queensland fruit fly (Bactrocera tryoni Froggatt) attraction to and chemical analysis of male annihilation blocks using three concentratios of cuelure at Dubbo, NSW, Australia. Plant Prot. Q. 24, 157–160 (2009).

  • 9.

    Dominiak, B. C., Ekman, J. & Broughton, S. Mass trapping and other management option for mediterranean fruit fly and Queensland fruit fly in Australia. Gen. Appl. Entomol. 44, 1–8 (2016).

    Google Scholar 

  • 10.

    Khan, M. A. M. et al. Semiochemical mediated enhancement of males to complement sterile insect technique in management of the tephritid pest Bactrocera tryoni (Froggatt). Sci. Rep. 7, 13366. https://doi.org/10.1038/s41598-017-13843-w (2017).

    ADS 
    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 11.

    Vargas, R. I., Shelly, T. E., Leblanc, L. & Piñero, J. C. in Vitamins & Hormones Vol. 83 (ed Gerald Litwack) Ch. 23, 575–595 (Academic Press, 2010).

  • 12.

    Benelli, G. et al. Sexual communication and related behaviours in Tephritidae: current knowledge and potential applications for Integrated Pest Management. J. Pest. Sci. 87, 385–405. https://doi.org/10.1007/s10340-014-0577-3 (2014).

    Article 

    Google Scholar 

  • 13.

    Shelly, T. E. Consumption of methyl eugenol by male Bactrocera dorsalis (Diptera: Tephritidae): low incidence of repeat feeding. Florida Entomologist 77, 201–208 (1994).

    CAS 
    Article 

    Google Scholar 

  • 14.

    Shelly, T. E. Trapping male oriental fruit flies (Diptera: Tephritidae): does feeding on a natural source of methyl eugenol reduce capture probability?. Florida Entomologist 83, 109–111 (2000).

    Article 

    Google Scholar 

  • 15.

    Tan, K. H., & Toong, Y. C. Floral synomone of a wild orchid, Bulbophyllum cheiri, lures Bactrocera fruit flies for pollination. J. Chem. Ecol. 28, 1161–1172 (2002).

  • 16.

    Shelly, T. E. Evaluation of a Genetic Sexing Strain of the Oriental Fruit Fly as a Candidate for Simultaneous Application of Male Annihilation and Sterile Insect Techniques (Diptera: Tephritidae). J. Econ. Entomol. 113, 1913–1921. https://doi.org/10.1093/jee/toaa099 (2020).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 17.

    Joseph, R. M. & Carlson, J. R. Drosophila Chemoreceptors: A Molecular Interface Between the Chemical World and the Brain. Trends in genetics : TIG 31, 683–695. https://doi.org/10.1016/j.tig.2015.09.005 (2015).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 18.

    Venthur, H., & Zhou, J.-J. Odorant receptors and odorant-binding proteins as insect pest control targets: A comparative analysis. Front. Physiol. 9, 1. https://doi.org/10.3389/fphys.2018.01163 (2018).

  • 19.

    Leal, W. S. Odorant reception in insects: roles of receptors, binding proteins, and degrading enzymes. Annu Rev. Entomol. 58, 373–391. https://doi.org/10.1146/annurev-ento-120811-153635 (2013).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 20.

    Zheng, W. et al. Identification and Expression Profile Analysis of Odorant Binding Proteins in the Oriental Fruit Fly Bactrocera dorsalis. Int. J. Mol. Sci. 14, 14936 (2013).

    Article 

    Google Scholar 

  • 21.

    Siciliano, P. et al. Identification of pheromone components and their binding affinity to the odorant binding protein CcapOBP83a-2 of the Mediterranean fruit fly, Ceratitis capitata. Insect Biochem. Mol. Biol. 48, 51–62. https://doi.org/10.1016/j.ibmb.2014.02.005 (2014).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 22.

    Siciliano, P. et al. Sniffing Out Chemosensory Genes from the Mediterranean Fruit Fly, Ceratitis capitata. Plos One 9, e85523https://doi.org/10.1371/journal.pone.0085523 (2014)

  • 23.

    Campanini, E. B. & de Brito, R. A. Molecular evolution of Odorant-binding proteins gene family in two closely related Anastrepha fruit flies. BMC Evol. Biol. 16, 198–198. https://doi.org/10.1186/s12862-016-0775-0 (2016).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 24.

    Park, K., et al. Expression patterns of two putative odorant-binding proteins in the olfactory organs of Drosophila have different implications for their functions. Vol. 300 (2000).

  • 25.

    Shanbhag, S. R. et al. Expression mosaic of odorant-binding proteins in Drosophila olfactory organs. Microsc. Res. Tech. 55, 297–306. https://doi.org/10.1002/jemt.1179 (2001).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 26.

    Wu, Z. et al. Discovery of chemosensory genes in the oriental fruit fly, Bactrocera dorsalis. PloS One 10, e0129794-e0129794.https://doi.org/10.1371/journal.pone.0129794 (2015)

  • 27.

    Liu, Z., Smagghe, G., Lei, Z. & Wang, J.-J. Identification of male- and female-specific olfaction genes in antennae of the Oriental Fruit Fly (Bactrocera dorsalis). PLoS ONE 11, e0147783–e0147783. https://doi.org/10.1371/journal.pone.0147783 (2016).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 28.

    Zhang, J. et al. Identification and expression profiles of novel odorant binding proteins and functional analysis of OBP99a in Bactrocera dorsalis. Arch. Insect Biochem. Physiol. 98, e21452. https://doi.org/10.1002/arch.21452 (2018).

    ADS 
    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 29.

    Cheng, J. et al. Identification and expression analysis of chemosensory genes in the citrus fruit fly Bactrocera (Tetradacus) minax. PeerJ Preprints 6, e27297v1. https://doi.org/10.7287/peerj.preprints.27297v1 (2018).

  • 30.

    Kumaran, N., Prentis, P. J., Mangalam, K. P., Schutze, M. K. & Clarke, A. R. Sexual selection in true fruit flies (Diptera: Tephritidae): transcriptome and experimental evidences for phytochemicals increasing male competitive ability. Mol. Ecol. 23, 4645–4657. https://doi.org/10.1111/mec.12880 (2014).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 31.

    Liu, H. et al. BdorOBP2 plays an indispensable role in the perception of methyl eugenol by mature males of Bactrocera dorsalis (Hendel). Sci. Rep. 7, 15894. https://doi.org/10.1038/s41598-017-15893-6 (2017).

    ADS 
    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 32.

    Kumaran, N. et al. Plant-Mediated Female Transcriptomic Changes Post-Mating in a Tephritid Fruit Fly, Bactrocera tryoni. Genome biology and evolution 10, 94–107.https://doi.org/10.1093/gbe/evx257 (2017)

  • 33.

    Idrees, A. et al. Protein baits, volatile compounds and irradiation influence the expression profiles of odorant-binding protein genes in Bactrocera dorsalis (Diptera: Tephritidae). Appl. Ecol. Environ. Res. 15, 1883–1899 (2017).

    Article 

    Google Scholar 

  • 34.

    Pavlidi, N. et al. Transcriptomic responses of the olive fruit fly Bactrocera oleae and its symbiont Candidatus Erwinia dacicola to olive feeding. Sci. Rep. 7, 42633. https://doi.org/10.1038/srep42633 (2017).

    ADS 
    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 35.

    Arya, G. H. et al. The genetic basis for variation in olfactory behavior in Drosophila melanogaster. Chem Senses 40, 233–243. https://doi.org/10.1093/chemse/bjv001 (2015).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 36.

    Akter, H., Adnan, S., Morelli, R., Rempoulakis, P. & Taylor, P. W. Suppression of cuelure attraction in male Queensland fruit flies provided raspberry ketone supplements as immature adults. PLoS ONE 12, e0184086. https://doi.org/10.1371/journal.pone.0184086 (2017).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 37.

    Gilchrist, A. S. et al. The draft genome of the pest tephritid fruit fly Bactrocera tryoni: resources for the genomic analysis of hybridising species. BMC Genomics 15, 1153. https://doi.org/10.1186/1471-2164-15-1153 (2014).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 38.

    Fleischer, J. & Krieger, J. Insect pheromone receptors—Key elements in sensing intraspecific chemical signals. Front. Cell. Neurosci. 12. https://doi.org/10.3389/fncel.2018.00425 (2018).

  • 39.

    Liu, Z. et al. An antennae-specific odorant-binding protein is involved in Bactrocera dorsalis Olfaction. Front. Ecol. Evol. 8.https://doi.org/10.3389/fevo.2020.00063 (2020).

  • 40.

    Tan, K. H. Recaptures of feral Bactrocera dorsalis and B. umbrosa (Diptera: Tephritidae) males after feeding on methyl eugenol. Bull. Entomol. Res. 110, 15–21, https://doi.org/10.1017/S0007485319000208 (2019).

  • 41.

    Liu, L. et al. Contribution of Drosophila DEG/ENaC genes to salt taste. Neuron 39, 133–146. https://doi.org/10.1016/s0896-6273(03)00394-5 (2003).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 42.

    Swarup, S., Huang, W., Mackay, T. F. C. & Anholt, R. R. H. Analysis of natural variation reveals neurogenetic networks for Drosophila olfactory behavior. Proc Natl Acad Sci USA 110, 1017–1022. https://doi.org/10.1073/pnas.1220168110 (2013).

    ADS 
    Article 
    PubMed 

    Google Scholar 

  • 43.

    Vijayan, V., Thistle, R., Liu, T., Starostina, E. & Pikielny, C. W. Drosophila pheromone-sensing neurons expressing the ppk25 Ion channel subunit stimulate male courtship and female receptivity. PLoS Genet. 10, e1004238. https://doi.org/10.1371/journal.pgen.1004238 (2014).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 44.

    Thistle, R., Cameron, P., Ghorayshi, A., Dennison, L. & Scott, K. Contact chemoreceptors mediate male-male repulsion and male-female attraction during Drosophila courtship. Cell 149, 1140–1151. https://doi.org/10.1016/j.cell.2012.03.045 (2012).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 45.

    Khan, M. A. M. et al. Raspberry ketone accelerates sexual maturation and improves mating performance of sterile male Queensland fruit fly, Bactrocera tryoni (Froggatt). Pest Manag. Sci. 75, 1942–1950. https://doi.org/10.1002/ps.5307 (2019).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 46.

    Weldon, C. W., Perez-Staples, D. & Taylor, P. W. Feeding on yeast hydrolysate enhances attraction to cue-lure in Queensland fruit flies, Bactrocera tryoni. Entomol. Experim. et Applicata 129, 200–209. https://doi.org/10.1111/j.1570-7458.2008.00768.x (2008)

  • 47.

    Najar-Rodriguez, A. J., Galizia, C. G., Stierle, J. & Dorn, S. Behavioral and neurophysiological responses of an insect to changing ratios of constituents in host plant-derived volatile mixtures. J. Exp. Biol. 213, 3388 (2010).

    CAS 
    Article 

    Google Scholar 

  • 48.

    Bertschy, C., Turlings, T. C., Bellotti, A. C. & Dorn, S. Chemically-mediated attraction of three parasitoid species to mealybug-infested cassava leaves. Florida Entomologist 80, 383–395 (1997).

    Article 

    Google Scholar 

  • 49.

    Butler, D. G., Cullis, B. R., Gilmour, A. R. & Gogel, B. J. (Queensland Department of Primary Industries and Fisheries, Australia, 2009).

  • 50.

    Bolger, A. M., Lohse, M. & Usadel, B. Trimmomatic: a flexible trimmer for Illumina sequence data. Bioinformatics 30, 2114–2120. https://doi.org/10.1093/bioinformatics/btu170 (2014).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 51.

    Zhao, Q.-Y. et al. Optimizing de novo transcriptome assembly from short-read RNA-Seq data: a comparative study. BMC Bioinf. 12, S2. https://doi.org/10.1186/1471-2105-12-S14-S2 (2011).

    CAS 
    Article 

    Google Scholar 

  • 52.

    Fu, L., Niu, B., Zhu, Z., Wu, S. & Li, W. CD-HIT: accelerated for clustering the next-generation sequencing data. Bioinformatics 28, 3150–3152. https://doi.org/10.1093/bioinformatics/bts565 (2012).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 53.

    Simão, F. A., Waterhouse, R. M., Ioannidis, P., Kriventseva, E. V. & Zdobnov, E. M. BUSCO: assessing genome assembly and annotation completeness with single-copy orthologs. Bioinformatics 31, 3210–3212. https://doi.org/10.1093/bioinformatics/btv351 (2015).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 54.

    Conesa, A. et al. Blast2GO: a universal tool for annotation, visualization and analysis in functional genomics research. Bioinformatics 21, 3674–3676. https://doi.org/10.1093/bioinformatics/bti610 (2005).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 55.

    Li, H. & Durbin, R. Fast and accurate short read alignment with Burrows-Wheeler transform. Bioinformatics 25, 1754–1760. https://doi.org/10.1093/bioinformatics/btp324 (2009).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 56.

    Patro, R., Duggal, G., Love, M. I., Irizarry, R. A. & Kingsford, C. Salmon provides fast and bias-aware quantification of transcript expression. Nat. Methods 14, 417–419. https://doi.org/10.1038/nmeth.4197 (2017).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 57.

    Risso, D., Ngai, J., Speed, T. P. & Dudoit, S. Normalization of RNA-seq data using factor analysis of control genes or samples. Nat. Biotechnol. 32, 896–902. https://doi.org/10.1038/nbt.2931 (2014).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 

  • 58.

    Al-Shahrour, F., Díaz-Uriarte, R. & Dopazo, J. FatiGO: a web tool for finding significant associations of Gene Ontology terms with groups of genes. Bioinformatics 20, 578–580. https://doi.org/10.1093/bioinformatics/btg455 (2004).

    CAS 
    Article 
    PubMed 

    Google Scholar 

  • 59.

    Ritchie, M. E. et al. limma powers differential expression analyses for RNA-sequencing and microarray studies. Nucl. Acids Res. 43, e47–e47. https://doi.org/10.1093/nar/gkv007 (2015).

    CAS 
    Article 
    PubMed 
    PubMed Central 

    Google Scholar 


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