Review

Research advances in effects of insecticide resistance on mosquito vector competence

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  • 1. Shandong Institute of Parasitic Diseases, Shandong First Medical University & Shandong Academy of Medical Sciences, Jining, Shandong 272033, China

Received date: 2023-02-14

  Online published: 2023-10-27

Supported by

National Natural Science Foundation of China (No. 81871685)

Abstract

The spread of mosquito-borne viral diseases seriously endangers public health security. Chemical control of mosquitoes is an effective means of controlling mosquito-borne diseases,but global continuous overuse of insecticides has led to the development and progression of insecticide resistance,which can affect the vector competence of some mosquitoes for mosquito-borne viruses. A large body of research has assessed the impact of insecticide resistance of mosquito vectors on their viral transmissibilty. This review focuses on research progress on the dynamic relationship between mosquito vector competence and insecticide resistance as well as the mechanisms associated with the change of vector competence due to insecticide resistance, with a view to providing a reference for future resistance research and vector control.

Cite this article

WU Jia-hui, PENG Hui, GONG Mao-qing . Research advances in effects of insecticide resistance on mosquito vector competence[J]. Chinese Journal of Vector Biology and Control, 2023 , 34(5) : 708 -712 . DOI: 10.11853/j.issn.1003.8280.2023.05.022

References

[1] Zhang HL,Liang GD. Arboviruses and arboviral diseases in China[J]. Chin J Vector Biol Control,2012,23(5):377-380. (in Chinese) 张海林,梁国栋. 中国虫媒病毒和虫媒病毒病[J]. 中国媒介生物学及控制杂志,2012,23(5):377-380.
[2] Fang Y,Khater EIM,Xue JB,et al. Epidemiology of mosquito-borne viruses in Egypt:A systematic review[J]. Viruses,2022,14(7):1577. DOI:10.3390/v14071577.
[3] Macke E,Tasiemski A,Massol F,et al. Life history and eco-evolutionary dynamics in light of the gut microbiota[J]. Oikos,2017,126(4):508-531. DOI:10.1111/oik.03900.
[4] SunXH. miR-13664 regulates deltamethrin resistance in Culex pipiens pallens[D]. Nanjing:Nanjing Medical University,2018. DOI:10.27249/d.cnki.gnjyu.2018.000226.(in Chinese) 孙小红. miR-13664与蚊抗药性关系的研究[D]. 南京:南京医科大学,2018. DOI:10.27249/d.cnki.gnjyu.2018.000226.
[5] World Health Organization. World malaria report 2013[M]. Geneva:World Health Organization,2013:6.
[6] Campos KB,Alomar AA,Eastmond BH,et al. Brazilian populations of Aedes aegypti resistant to pyriproxyfen exhibit lower susceptibility to infection with Zika virus[J]. Viruses,2022,14(10):2198. DOI:10.3390/v14102198.
[7] Viglietta M,Bellone R,Blisnick AA,et al. Vector specificity of arbovirus transmission[J]. Front Microbiol,2021,12:773211. DOI:10.3389/fmicb.2021.773211.
[8] Tabachnick WJ. Genetics of insect vector competence for arboviruses[M]//Harris KF. Advances in disease vector research. New York:Springer,1994:93-108. DOI:10.1007/978-1-4612-2590-4_4.
[9] Wang LJ,Fontaine A,Gaborit P,et al. Interactions between vector competence to Chikungunya virus and resistance to deltamethrin in Aedes aegypti laboratory lines?[J]. Med Vet Entomol,2022,36(4):486-495. DOI:10.1111/mve.12593.
[10] WeiY. Genetic diversity and vector competence for DENV-2 in Aedes albopictus populations from different regions of China[D]. Guangzhou:Southern Medical University,2021. DOI:10.27003/d.cnki.gojyu.2021.000133.(in Chinese) 魏勇. 中国不同地区白纹伊蚊种群遗传多样性和感染DENV-2媒介能力的研究[D]. 广州:南方医科大学,2021. DOI:10. 27003/d.cnki.gojyu.2021.000133.
[11] LiuMD. Study on the relation of Dengue 2 virus’ receptor to mesenteron infection barrier in Aedes albopictus and Culex pipiens quinquefasciatus[D]. Beijing:Academy of Military Medical Sciences,2003. (in Chinese) 刘美德. 白纹伊蚊和致倦库蚊对登革2型病毒中肠感染屏障与病毒受体关系的研究[D]. 北京:中国人民解放军军事医学科学院,2003.
[12] Juache-Villagrana AE,Pando-Robles V,Garcia-Luna SM,et al. Assessing the impact of insecticide resistance on vector competence:A review[J]. Insects,2022,13(4):377. DOI:10.3390/insects13040377.
[13] Parker-Crockett C,Connelly CR,Siegfried B,et al. Influence of pyrethroid resistance on vector competency for Zika virus by Aedes aegypti (Diptera:Culicidae)[J]. J Med Entomol,2021,58(4):1908-1916. DOI:10.1093/jme/tjab035.
[14] Zhao LM,Alto BW,Shin D,et al. The effect of permethrin resistance on Aedes aegypti transcriptome following ingestion of Zika virus infected blood[J]. Viruses,2018,10(9):470. DOI:10.3390/v10090470.
[15] Stephenson CJ,Coatsworth H,Waits CM,et al. Geographic partitioning of Dengue virus transmission risk in Florida[J]. Viruses,2021,13(11):2232. DOI:10.3390/v13112232.
[16] Deng JL,Guo YJ,Su XH,et al. Impact of deltamethrin-resistance in Aedes albopictus on its fitness cost and vector competence[J]. PLoS Negl Trop Dis,2021,15(4):e0009391. DOI:10.1371/journal.pntd.0009391.
[17] Hanley KA,Azar SR,Campos RK,et al. Support for the transmission-clearance trade-off hypothesis from a study of Zika virus delivered by mosquito bite to mice[J]. Viruses,2019,11(11):1072. DOI:10.3390/v11111072.
[18] Chen TY,Smartt CT,Shin D. Permethrin resistance in Aedes aegypti affects aspects of vectorial capacity[J]. Insects,2021,12(1):71. DOI:10.3390/insects12010071.
[19] Ye YH,Chenoweth SF,Carrasco AM,et al. Evolutionary potential of the extrinsic incubation period of Dengue virus in Aedes aegypti[J]. Evolution,2016,70(11):2459-2469. DOI:10.1111/evo.13039.
[20] Brito LP,Linss JGB,Lima-Camara TN,et al. Assessing the effects of Aedes aegypti kdr mutations on pyrethroid resistance and its fitness cost[J]. PLoS One,2013,8(4):e60878. DOI:10.1371/journal.pone.0060878.
[21] Serrato IM,Moreno-Aguilera D,Caicedo PA,et al. Vector competence of lambda-cyhalothrin resistant Aedes aegypti strains for Dengue-2,Zika and Chikungunya viruses in Colombia[J]. PLoS One,2022,17(10):e0276493. DOI:10.1371/journal.pone.0276493.
[22] Atyame CM,Alout H,Mousson L,et al. Insecticide resistance genes affect Culex quinquefasciatus vector competence for West Nile virus[J]. Proc Roy Soc B:Biol Sci,2019,286(1894):20182273. DOI:10.1098/rspb.2018.2273.
[23] McCarroll L,Hemingway J. Can insecticide resistance status affect parasite transmission in mosquitoes?[J]. Insect Biochem Mol Biol,2002,32(10):1345-1351. DOI:10.1016/S0965-1748(02)00097-8.
[24] Zhu F,Lavine L,O’Neal S,et al. Insecticide resistance and management strategies in urban ecosystems[J]. Insects,2016,7(1):2. DOI:10.3390/insects7010002.
[25] Xie RL,Huang LF,Peng LL,et al. Deltamethrin exposure induced the alteration of amino acids level in the wild deltamethrin-resistant strain of Aedes albopictus larvae[J]. J Trop Med,2018,18(3):285-288. DOI:10.3969/j.issn.1672-3619.2018.03.003.(in Chinese) 解锐历,黄莲芬,彭丽兰,等. 溴氰菊酯暴露对白纹伊蚊抗性株幼虫氨基酸水平的影响[J]. 热带医学杂志,2018,18(3):285-288. DOI:10.3969/j.issn.1672-3619.2018.03.003.
[26] Shi QQ,Cheng P,Gong MQ. Progress in molecular mechanisms of mosquito resistance to insecticides[J]. Chin J Vector Biol Control,2016,27(5):515-519. DOI:10.11853/j.issn.1003. 8280.2016.05.028.(in Chinese) 史琦琪,程鹏,公茂庆. 蚊虫抗药性分子机制研究进展[J]. 中国媒介生物学及控制杂志,2016,27(5):515-519. DOI:10.11853/j.issn.1003.8280.2016.05.028.
[27] Agarwal A,Parida M,Dash PK. Impact of transmission cycles and vector competence on global expansion and emergence of arboviruses[J]. Rev Med Virol,2017,27(5):e1941. DOI:10.1002/rmv.1941.
[28] Rivero A,Vézilier J,Weill M,et al. Insecticide control of vector-borne diseases:When is insecticide resistance a problem?[J]. PLoS Pathog,2010,6(8):e1001000. DOI:10.1371/journal.ppat.1001000.
[29] Friedlander E,Steinrücken M. A numerical framework for genetic hitchhiking in populations of variable size[J]. Genetics,2022,220(3):iyac012. DOI:10.1093/genetics/iyac012.
[30] Martins AJ,Ribeiro CDEM,Bellinato DF,et al. Effect of insecticide resistance on development,longevity and reproduction of field or laboratory selected Aedes aegypti populations[J]. PLoS One,2012,7(3):e31889.
[31] Yan GY,Chadee DD,Severson DW. Evidence for genetic hitchhiking effect associated with insecticide resistance in Aedes aegypti[J]. Genetics,1998,148(2):793-800. DOI:10.1093/genetics/148.2.793.
[32] Mitri C,Markianos K,Guelbeogo WM,et al. The kdr-bearing haplotype and susceptibility to Plasmodium falciparum in Anopheles gambiae:Genetic correlation and functional testing[J]. Malar J,2015,14:391. DOI:10.1186/s12936-015-0924-8.
[33] Rivero A,Magaud A,Nicot A,et al. Energetic cost of insecticide resistance in Culex pipiens mosquitoes[J]. J Med Entomol,2011,48(3):694-700. DOI:10.1603/ME10121.
[34] Hardstone MC,Huang X,Harrington LC,et al. Differences in development,glycogen,and lipid content associated with cytochrome P450-mediated permethrin resistance in Culex pipiens quinquefasciatus (Diptera:Culicidae)[J]. J Med Entomol,2010,47(2):188-198. DOI:10.1093/jmedent/47.2.188.
[35] Otali D,Novak RJ,Wan W,et al. Increased production of mitochondrial reactive oxygen species and reduced adult life span in an insecticide-resistant strain of Anopheles gambiae[J]. Bull Entomol Res,2014,104(3):323-333. DOI:10.1017/S0007485314000091.
[36] Heu K,Gendrin M. Le microbiote de moustique et son influence sur la transmission vectorielle[J]. Biol Aujourd’hui,2018,212(3/4):119-136. DOI:10.1051/jbio/2019003.
[37] Angleró-Rodríguez YI,Talyuli OA,Blumberg BJ,et al. An Aedes aegypti-associated fungus increases susceptibility to Dengue virus by modulating gut trypsin activity[J]. eLife,2017,6:e28844. DOI:10.7554/eLife.28844.
[38] Dada N,Sheth M,Liebman K,et al. Whole metagenome sequencing reveals links between mosquito microbiota and insecticide resistance in malaria vectors[J]. Sci Rep,2018,8(1):2084.
[39] Dieme C,Rotureau B,Mitri C. Microbial pre-exposure and vectorial competence of Anopheles mosquitoes[J]. Front Cell Infect Microbiol,2017,7:508. DOI:10.3389/fcimb.2017.00508.
[40] Gabrieli P,Caccia S,Varotto-Boccazzi I,et al. Mosquito trilogy:Microbiota,immunity and pathogens,and their implications for the control of disease transmission[J]. Front Microbiol,2021,12:630438. DOI:10.3389/fmicb.2021.630438.
[41] Vijay S,Rawal R,Kadian K,et al. Annotated differentially expressed salivary proteins of susceptible and insecticide-resistant mosquitoes of Anopheles stephensi[J]. PLoS One,2015,10(3):e0119666. DOI:10.1371/journal.pone.0119666.
[42] Djegbe I,Cornelie S,Rossignol M,et al. Differential expression of salivary proteins between susceptible and insecticide-resistant mosquitoes of Culex quinquefasciatus[J]. PLoS One,2011,6(3):e17496. DOI:10.1371/journal.pone.0017496.
[43] Vlkova M,Rohousova I,Hostomska J,et al. Kinetics of antibody response in BALB/c and C57BL/6 mice bitten by Phlebotomus papatasi[J]. PLoS Negl Trop Dis,2012,6(7):e1719. DOI:10.1371/journal.pntd.0001719.
[44] Gazave É,Chevillon C,Lenormand T,et al. Dissecting the cost of insecticide resistance genes during the overwintering period of the mosquito Culex pipiens[J]. Heredity,2001,87(4):441-448. DOI:10.1046/j.1365-2540.2001.00926.x.
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