Microinjection-enabled gene silencing in first instar larvae of western flower thrips, Frankliniella occidentalis, reveals vital genes for larval survival

Jinlong Han , Dorith Rotenberg

Insect Science ›› 2025, Vol. 32 ›› Issue (6) : 1969 -1981.

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Insect Science ›› 2025, Vol. 32 ›› Issue (6) :1969 -1981. DOI: 10.1111/1744-7917.13478
ORIGINAL ARTICLE
Microinjection-enabled gene silencing in first instar larvae of western flower thrips, Frankliniella occidentalis, reveals vital genes for larval survival
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Abstract

The western flower thrips (Frankliniella occidentalis) is a significant agricultural pest, causing severe global yield losses due to extensive feeding damage and the transmission of plant pathogenic viruses. Despite recent advancements in RNA interference (RNAi) in thrips species, its application has been mostly limited to the adult stage. Given the crucial role of first instar larval thrips in acquiring and transmitting orthotospoviruses, achieving gene silencing in these larvae is critical for studying virus entry and acquisition. While thoracic and abdominal injections have proven effective in adult thrips, the low post-injection survival rate hinders their use in larval thrips. This study addresses this challenge by presenting a microinjection methodology to deliver dsRNA into the hemolymph of first instar larval thrips through the coxa, the first proximal segment of the foreleg. This method significantly improved larval survival rate by preventing detrimental damage to the internal tissues. Significant knockdown of V-ATPase-B, cytochrome P450 (CYP3653A2), and apolipophorin-II/I (ApoLp-II/I) transcripts was confirmed after 48 and/or 72 h post injection (hpi), corresponding to the first and second instar larval stages, respectively. Silencing CYP3653A2 or ApoLp-II/I significantly increased larval mortality. These findings demonstrate proof-of-principle of gene silencing and associated silencing phenotype (mortality) for first instar larval thrips and highlight the essential role of CYP3653A2 and ApoLp-II/I in larval vitality. Our RNAi-based tool offers an opportunity to investigate the molecular mechanisms of thrips-orthotospovirus interactions, as the virus must be acquired by young larval thrips for successful transmission to plants, thus presenting potential targets for thrips pest management.

Keywords

functional insect genomics / gene knockdown / thrips vectors / Thysanoptera

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Jinlong Han, Dorith Rotenberg. Microinjection-enabled gene silencing in first instar larvae of western flower thrips, Frankliniella occidentalis, reveals vital genes for larval survival. Insect Science, 2025, 32(6): 1969-1981 DOI:10.1111/1744-7917.13478

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References

[1]

Allen, M.L. and Walker, W.B. (2012) Saliva of Lygus lineolaris digests double stranded ribonucleic acids. Journal of Insect Physiology, 58, 391–396.

[2]

Andongma, A.A., Greig, C., Dyson, P.J., Flynn, N. and Whitten, M.M.A. (2020) Optimization of dietary RNA interference delivery to western flower thrips Frankliniella occidentalis and onion thrips Thrips tabaci. Archives of Insect Biochemistry and Physiology, 103, e21645.

[3]

Arziman, Z., Horn, T. and Boutros, M. (2005) E-RNAi: a web application to design optimized RNAi constructs. Nucleic Acids Research, 33, W582–W588.

[4]

Badillo-Vargas, I.E., Rotenberg, D., Schneweis, B.A. and Whitfield, A.E. (2015) RNA interference tools for the western flower thrips, Frankliniella occidentalis. Journal of Insect Physiology, 76, 36–46.

[5]

Badillo-Vargas, I.E., Rotenberg, D., Schneweis, D.J., Hiromasa, Y., Tomich, J.M. and Whitfield, A.E. (2012) Proteomic analysis of Frankliniella occidentalis and differentially expressed proteins in response to Tomato spotted wilt virus infection. Journal of Virology, 86, 8793–8809.

[6]

Benoit, J.B., Yang, G., Krause, T.B., Patrick, K.R., Aksoy, S. and Attardo, G.M. (2011) Lipophorin acts as a shuttle of lipids to the milk gland during tsetse fly pregnancy. Journal of Insect Physiology, 57, 1553–1561.

[7]

Biondi, A., Mommaerts, V., Smagghe, G., Vinuela, E., Zappala, L. and Desneux, N. (2012) The non-target impact of spinosyns on beneficial arthropods. Pest Management Science, 68, 1523–1536.

[8]

Burand, J.P. and Hunter, W.B. (2013) RNAi: Future in insect management. Journal of Invertebrate Pathology, 112, S68–S74.

[9]

Catto, M.A., Labadie, P.E., Jacobson, A.L., Kennedy, G.G., Srinivasan, R. and Hunt, B.G. (2023) Pest status, molecular evolution, and epigenetic factors derived from the genome assembly of Frankliniella fusca, a thysanopteran phytovirus vector. BMC Genomics, 24, 343.

[10]

Christiaens, O. and Smagghe, G. (2014) The challenge of RNAi-mediated control of hemipterans. Current Opinion in Insect Science, 6, 15–21.

[11]

Christiaens, O., Swevers, L. and Smagghe, G. (2014) dsRNA degradation in the pea aphid (Acyrthosiphon pisum) associated with lack of response in RNAi feeding and injection assay. Peptides, 53, 307–314.

[12]

Christiaens, O., Niu, J. and Taning, C.N.T. (2020a) RNAi in insects: a revolution in fundamental research and pest control applications. Insects, 11, 415.

[13]

Christiaens, O., Whyard, S., Vélez, A.M. and Smagghe, G. (2020b) Double-stranded RNA technology to control insect pests: current status and challenges. Frontiers in Plant Science, 11, 451.

[14]

Chung, H., Sztal, T., Pasricha, S., Sridhar, M., Batterham, P. and Daborn, P.J. (2009) Characterization of Drosophila melanogaster cytochrome P450 genes. Proceedings of the National Academy of Sciences USA, 106, 5731–5736.

[15]

Cooper, A.M.W., Silver, K., Zhang, J., Park, Y. and Zhu, K.Y. (2019) Molecular mechanisms influencing efficiency of RNA interference in insects. Pest Management Science, 75, 18–28.

[16]

De Assis Filho, F.M., Deom, C.M. and Sherwood, J.L. (2004) Acquisition of tomato spotted wilt virus by adults of two thrips species. Phytopathology, 94, 333–336.

[17]

Feyereisen, R. (1999) Insect P450 enzymes. Annual Review of Entomology, 44, 507–533.

[18]

Gao, Y., Lei, Z. and Reitz, S.R. (2012) Western flower thrips resistance to insecticides: detection, mechanisms and management strategies. Pest Management Science, 68, 1111–1121.

[19]

Gilbertson, R.L., Batuman, O., Webster, C.G. and Adkins, S. (2015) Role of the insect supervectors Bemisia tabaci and Frankliniella occidentalis in the emergence and global spread of plant viruses. Annual Review of Virology, 2, 67–93.

[20]

Guittard, E., Blais, C., Maria, A., Parvy, J.P., Pasricha, S., Lumb, C. et al. (2011) CYP18A1, a key enzyme of Drosophila steroid hormone inactivation, is essential for metamorphosis. Developmental Biology, 349, 35–45.

[21]

Guo, S.K., Cao, L.J., Song, W., Shi, P., Gao, Y.F., Gong, Y.J. et al. (2020) Chromosome-level assembly of the melon thrips genome yields insights into evolution of a sap-sucking lifestyle and pesticide resistance. Molecular Ecology Resources, 20, 1110–1125.

[22]

Han, J. and Rotenberg, D. (2021) Integration of transcriptomics and network analysis reveals co-expressed genes in Frankliniella occidentalis larval guts that respond to tomato spotted wilt virus infection. BMC Genomics, 22, 810.

[23]

Han, S.H., Kim, J.H., Kim, K. and Lee, S.H. (2019) Selection of lethal genes for ingestion RNA interference against western flower thrips, Frankliniella occidentalis, via leaf disc-mediated dsRNA delivery. Pesticide Biochemistry and Physiology, 161, 47–53.

[24]

Hu, Q.L., Ye, Z.X., Zhuo, J.C., Li, J.M. and Zhang, C.X. (2023) A chromosome-level genome assembly of Stenchaetothrips biformis and comparative genomic analysis highlights distinct host adaptations among thrips. Communications Biology, 6, 813.

[25]

Kim, C.Y. and Kim, Y.G. (2023) Insulin-like peptides of the western flower thrips Frankliniella occidentalis and their mediation of immature development. Insects, 14, 47.

[26]

Kola, V.S.R., Renuka, P., Padmakumari, A.P., Mangrauthia, S.K., Balachandran, S.M., Ravindra Babu, V. et al. (2016) Silencing of CYP6 and APN genes affects the growth and development of rice yellow stem borer, Scirpophaga incertulas. Frontiers in Physiology, 7, 20.

[27]

Kunte, N., McGraw, E., Bell, S., Held, D. and Avila, L.A. (2020) Prospects, challenges and current status of RNAi through insect feeding. Pest Management Science, 76, 26–41.

[28]

Liu, X., Wang, Y., Liu, H., Huang, X., Qian, L., Yang, B. et al. (2023) Enhanced β-glucosidase in western flower thrips affects its interaction with the redox-based strategies of kidney beans under elevated CO2. Plant, Cell & Environment, 46, 918–930.

[29]

Lomate, P.R. and Bonning, B.C. (2016) Distinct properties of proteases and nucleases in the gut, salivary gland and saliva of southern green stink bug, Nezara viridula. Scientific Reports, 6, 27587.

[30]

Lomate, P.R. and Bonning, B.C. (2018) Proteases and nucleases involved in the biphasic digestion process of the brown marmorated stink bug, Halyomorpha halys (Hemiptera: Pentatomidae). Archives of Insect Biochemistry and Physiology, 98, e21459.

[31]

Ma, L., Liu, Q., Wei, S., Liu, S., Tian, L., Song, F. et al. (2023) Chromosome-level genome assembly of bean flower thrips Megalurothrips usitatus (Thysanoptera: Thripidae). Scientific Data, 10, 252.

[32]

Mamta, B. and Rajam, M.V. (2017) RNAi technology: a new platform for crop pest control. Physiology and Molecular Biology of Plants, 23, 487–501.

[33]

Moritz, G., Kumm, S. and Mound, L. (2004) Tospovirus transmission depends on thrips ontogeny. Virus Research, 100, 143–149.

[34]

Pfaffl, M.W. (2001) A new mathematical model for relative quantification in real-time RT–PCR. Nucleic Acids Research, 29, e45.

[35]

Raffin, C.L., Price, B.E., Yun, S.H. and Choi, M.Y. (2022) Nano-injection method for micro-insects without sedation using the western flower thrips, Frankliniella occidentalis. Journal of Applied Entomology, 146, 1200–1206.

[36]

Rajarapu, S.P., Ben-Mahmoud, S., Benoit, J.B., Ullman, D.E., Whitfield, A.E. and Rotenberg, D. (2022) Sex-biased proteomic response to tomato spotted wilt virus infection of the salivary glands of Frankliniella occidentalis, the western flower thrips. Insect Biochemistry and Molecular Biology, 149, 103843.

[37]

Reitz, S.R. (2009) Biology and ecology of the western flower thrips (Thysanoptera: Thripidae): the making of a pest. Florida Entomologist, 92, 7–13.

[38]

Rosen, R., Lebedev, G., Kontsedalov, S., Ben-Yakir, D. and Ghanim, M. (2021) A de novo transcriptomics approach reveals genes involved in Thrips tabaci resistance to spinosad. Insects, 12, 67.

[39]

Rotenberg, D., Baumann, A.A., Ben-Mahmoud, S., Christiaens, O., Dermauw, W., Ioannidis, P. et al. (2020) Genome-enabled insights into the biology of thrips as crop pests. BMC Biology, 18, 142.

[40]

Rotenberg, D. and Whitfield, A.E. (2018) Molecular interactions between tospoviruses and thrips vectors. Current Opinion in Virology, 33, 191–197.

[41]

Ryan, R.O. and van der Horst, D.J. (2000) Lipid transport biochemistry and its role in energy production. Annual Review of Entomology, 45, 233–260.

[42]

Schneweis, D.J., Whitfield, A.E. and Rotenberg, D. (2017) Thrips developmental stage-specific transcriptome response to tomato spotted wilt virus during the virus infection cycle in Frankliniella occidentalis, the primary vector. Virology, 500, 226–237.

[43]

Scott, J.G., Michel, K., Bartholomay, L.C., Siegfried, B.D., Hunter, W.B., Smagghe, G. et al. (2013) Towards the elements of successful insect RNAi. Journal of Insect Physiology, 59, 1212–1221.

[44]

Sharma, R., Christiaens, O., Taning, C.N. and Smagghe, G. (2021) RNAi-mediated mortality in southern green stinkbug Nezara viridula by oral delivery of dsRNA. Pest Management Science, 77, 77–84.

[45]

Shrestha, A., Champagne, D.E., Culbreath, A.K., Abney, M.R. and Srinivasan, R. (2019) Comparison of transcriptomes of an orthotospovirus vector and non-vector thrips species. PLoS ONE, 14, e0223438.

[46]

Shrestha, A., Champagne, D.E., Culbreath, A.K., Rotenberg, D., Whitfield, A.E. and Srinivasan, R. (2017) Transcriptome changes associated with Tomato spotted wilt virus infection in various life stages of its thrips vector, Frankliniella fusca (Hinds). Journal of General Virology, 98, 2156–2170.

[47]

Silver, K., Cooper, A.M.W. and Zhu, K.Y. (2021) Strategies for enhancing the efficiency of RNA interference in insects. Pest Management Science, 77, 2645–2658.

[48]

Singh, S., Gupta, M., Pandher, S., Kaur, G., Goel, N., Rathore, P. et al. (2019) RNA sequencing, selection of reference genes and demonstration of feeding RNAi in Thrips tabaci (Lind.) (Thysanoptera: Thripidae). BMC Molecular Biology, 20, 6.

[49]

Song, W., Cao, L.J., Chen, J.C., Bao, W.X. and Wei, S.J. (2024) Chromosome-level genome assembly of the western flower thrips Frankliniella occidentalis. Scientific Data, 11, 582.

[50]

Stafford-Banks, C.A., Rotenberg, D., Johnson, B.R., Whitfield, A.E. and Ullman, D.E. (2014) Analysis of the salivary gland transcriptome of Frankliniella occidentalis. PLoS ONE, 9, e94447.

[51]

Stumpf, C.F. and Kennedy, G.G. (2007) Effects of tomato spotted wilt virus isolates, host plants, and temperature on survival, size, and development time of Frankliniella occidentalis. Entomologia Experimentalis et Applicata, 123, 139–147.

[52]

Tao, M., Wan, Y., Zheng, X., Qian, K., Merchant, A., Xu, B. et al. (2022) Tomato spotted wilt orthotospovirus shifts sex ratio toward males in the western flower thrips, Frankliniella occidentalis, by down-regulating a FSCB-like gene. Pest Management Science, 78, 5014–5023.

[53]

Ullman, D.E. (1992) A midgut barrier to tomato spotted wilt virus acquisition by adult western flower thrips. Phytopathology, 82, 1333.

[54]

Van De Wetering, F., Goldbach, R. and Peters, D. (1996) Tomato spotted wilt tospovirus ingestion by first instar larvae of Frankliniella occidentalis is a prerequisite for transmission. Phytopathology, 86, 900–905.

[55]

Venkatesh, J., Kim, S.J., Siddique, M.I., Kim, J.H., Lee, S.H. and Kang, B.C. (2023) CopE and TLR6 RNAi-mediated tomato resistance to western flower thrips. Journal of Integrative Agriculture, 22, 471–480.

[56]

Whitten, M.M.A., Facey, P.D., del Sol, R., Fernández-Martínez, L.T., Evans, M.C., Mitchell, J.J. et al. (2016) Symbiont-mediated RNA interference in insects. Proceedings of the Royal Society B: Biological Sciences, 283, 20160042.

[57]

Widana Gamage, S.M.K., Rotenberg, D., Schneweis, D.J., Tsai, C.W. and Dietzgen, R.G. (2018) Transcriptome-wide responses of adult melon thrips (Thrips palmi) associated with capsicum chlorosis virus infection. PLoS ONE, 13, e0208538.

[58]

Wu, M., Dong, Y., Zhang, Q., Li, S., Chang, L., Loiacono, F.V. et al. (2022) Efficient control of western flower thrips by plastid-mediated RNA interference. Proceedings of the National Academy of Sciences USA, 119, e2120081119.

[59]

Yu, N., Christiaens, O., Liu, J., Niu, J., Cappelle, K., Caccia, S. et al. (2013) Delivery of dsRNA for RNAi in insects: an overview and future directions. Insect Science, 20, 4–14.

[60]

Zhang, L., Lu, Y., Xiang, M., Shang, Q. and Gao, X. (2016) The retardant effect of 2-Tridecanone, mediated by cytochrome P450, on the development of cotton bollworm, Helicoverpa armigera. BMC Genomics, 17, 954.

[61]

Zhang, Z., Bao, J., Chen, Q., He, J., Li, X., Zhang, J. et al. (2023) Chromosome-level genome assembly of the flower thrips Frankliniella intonsa. Scientific Data, 10, 844.

[62]

Zhang, Z., Zhang, P., Li, W., Zhang, J., Huang, F., Yang, J. et al. (2013) De novo transcriptome sequencing in Frankliniella occidentalis to identify genes involved in plant virus transmission and insecticide resistance. Genomics, 101, 296–305.

[63]

Zhao, Y., Liu, W., Zhao, X., Yu, Z., Guo, H., Yang, Y. et al. (2020) Apolipophorin-II/I contributes to cuticular hydrocarbon transport and cuticle barrier construction in Locusta migratoria. Frontiers in Physiology, 11, 790.

[64]

Zhu, K.Y. and Palli, S.R. (2020) Mechanisms, applications, and challenges of insect RNA interference. Annual Review of Entomology, 65, 293–311.

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