Assessing the direct and spillover protective effectiveness of Wolbachia-mediated introgression to combat dengue.

Jo Yi Chow, Somya Bansal, Borame S L Dickens, Pei Ma, Ary Hoffmann, Yoon Ling Cheong, Nazni Wasi Ahmad, Jue Tao Lim
Author Information
  1. Jo Yi Chow: Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore, 308232, Singapore.
  2. Somya Bansal: Saw Swee Hock School of Public Health, National University of Singapore, Singapore, 117549, Singapore.
  3. Borame S L Dickens: Saw Swee Hock School of Public Health, National University of Singapore, Singapore, 117549, Singapore. Electronic address: ephdbsl@nus.edu.sg.
  4. Pei Ma: Saw Swee Hock School of Public Health, National University of Singapore, Singapore, 117549, Singapore.
  5. Ary Hoffmann: Pest and Environmental Research Group, Bio21 Institute, University of Melbourne, Melbourne, VIC, 3010, Australia.
  6. Yoon Ling Cheong: Biomedical Museum Unit, Special Resource Centre, Institute for Medical Research, Jalan Pahang, Kuala Lumpur, 50588, Malaysia.
  7. Nazni Wasi Ahmad: Medical Entomology Unit, Infectious Disease Research Centre, Institute for Medical Research, Jalan Pahang, Kuala Lumpur, 50588, Malaysia.
  8. Jue Tao Lim: Lee Kong Chian School of Medicine, Nanyang Technological University, Singapore, 308232, Singapore.

Abstract

BACKGROUND: Dengue remains a global health challenge with limited treatment options, highlighting the need for effective vector control strategies. The introduction of Wolbachia pipientis into Aedes aegypti populations has shown success in reducing dengue transmission across global field trials. However, the spillover effectiveness of the technology on untreated areas is not well-known. This study estimates the spillover protective effectiveness (PE) of Wolbachia-mediated introgression on dengue.
METHODS: We used the synthetic control method (SCM) under assumption of partial interference to evaluate the direct and spillover PEs of Wolbachia-mediated introgression in a long-running operational trial of the intervention in Malaysia. Synthetic controls (SCs), which comprise of a weighted sum of non-spillover controls, were constructed for each directly-treated and spillover site in the pre-intervention period to account for historical imbalances in dengue risk and risk trajectories. SCs were compared to directly/spillover-treated sites to estimate the impact of Wolbachia-introgression on dengue incidence across each site, calendar year and intervention time. Robustness checks, including visual inspections, root-mean-square error (RMSE) calculations, in-space and in-time placebo checks, and permutation tests, were used to inspect the model's ability in attributing dengue incidence reductions to the Wolbachia interventions.
FINDINGS: The direct and spillover PEs of Wolbachia on dengue incidence were expressed as a percentage reduction of dengue incidence, or the absolute case reductions, by comparing SCs to actual intervention/spillover sites. Findings indicate a direct reduction in dengue incidence by 64.35% (95% CI: 63.50-66.71, p < 0.05 using permutation tests) in directly treated areas, corresponding to 1802 (95% CI: 1768-1932) cases averted. Meanwhile, spillover effects contributed to a 37.69% (95% CI: 36.45-38.49, p < 0.05) reduction in adjacent non-intervention areas, accounting for 115 (95% CI: 104-132) absolute cases averted. Tracking PEs by intervention time revealed a dose-response relationship, where PEs increased concomitantly with Wolbachia frequency. Model checks confirmed the robustness of these results, and ascertained that these PEs were not an artefact of poor control selection, pre-trends in dengue incidence or poor predictive ability of the fitted SCs.
INTERPRETATION: Wolbachia-introgression effectively diminished dengue incidence in directly-treated and surrounding spillover regions. This dual effectiveness highlights the potential of Wolbachia-infected mosquitoes as a sustainable, cost-effective strategy against dengue.
FUNDING: This research is hosted by CNRS@CREATE and supported by the National Research Foundation, Prime Minister's Office, Singapore, under its Campus for Research Excellence and Technological Enterprise (CREATE) program, and is funded by the Lee Kong Chian School of Medicine-Ministry of Education Start-Up Grant. The original Hoffmann et al. (2024) study was funded by the Wellcome Trust Awards 226166, 108508, 202888 and the Ministry of Health Malaysia NMRR-16-297-28898.

Keywords

References

  1. Lancet Infect Dis. 2022 Nov;22(11):1587-1595 [PMID: 36182679]
  2. J Travel Med. 2024 Oct 19;31(7): [PMID: 39105274]
  3. Hum Vaccin Immunother. 2017 May 4;13(5):1059-1072 [PMID: 28281864]
  4. Trop Med Infect Dis. 2021 Sep 30;6(4): [PMID: 34698303]
  5. Trials. 2022 Dec 17;23(1):1023 [PMID: 36528590]
  6. BMJ. 2009 Jun 09;338:b1959 [PMID: 19509031]
  7. N Engl J Med. 2021 Jun 10;384(23):2177-2186 [PMID: 34107180]
  8. Heredity (Edinb). 2018 May;120(5):386-395 [PMID: 29358725]
  9. PLoS Negl Trop Dis. 2023 Nov 30;17(11):e0011713 [PMID: 38032857]
  10. Curr Biol. 2019 Dec 16;29(24):4241-4248.e5 [PMID: 31761702]
  11. Mol Ecol Resour. 2019 Sep;19(5):1254-1264 [PMID: 31125998]
  12. Lancet Planet Health. 2024 Sep;8(9):e617-e628 [PMID: 39243778]
  13. iScience. 2024 Jan 18;27(2):108942 [PMID: 38327789]
  14. Gates Open Res. 2019 Sep 26;3:1547 [PMID: 31667465]
  15. PLoS Negl Trop Dis. 2023 Jun 22;17(6):e0011400 [PMID: 37347767]
  16. J Med Entomol. 2022 Jul 13;59(4):1164-1170 [PMID: 35640992]
  17. Lancet Microbe. 2024 May;5(5):e422-e432 [PMID: 38342109]
  18. Sci Rep. 2023 Sep 11;13(1):14932 [PMID: 37696983]
  19. BMC Med. 2020 Jul 9;18(1):186 [PMID: 32641039]
  20. Environ Microbiol. 2022 Dec;24(12):5749-5759 [PMID: 36200325]
  21. PLoS Negl Trop Dis. 2021 Jul 12;15(7):e0009556 [PMID: 34252106]
  22. Am J Trop Med Hyg. 2016 Mar;94(3):507-16 [PMID: 26711515]
  23. PLoS Negl Trop Dis. 2023 May 30;17(5):e0011356 [PMID: 37253037]

MeSH Term

Wolbachia
Dengue
Animals
Aedes
Humans
Mosquito Vectors
Dengue Virus
Malaysia
Mosquito Control
Incidence

Word Cloud

Created with Highcharts 10.0.0denguespilloverincidencecontrolWolbachiaPEseffectivenessdirectSCs95%CI:areasWolbachia-mediatedintrogressioninterventionchecksreductionDengueglobalacrossstudyprotectiveusedmethodSCMinterferenceMalaysiaSyntheticcontrolsdirectly-treatedsiterisksitesWolbachia-introgressiontimepermutationtestsabilityreductionsabsolutep < 005casesavertedpoorResearchfundedBACKGROUND:remainshealthchallengelimitedtreatmentoptionshighlightingneedeffectivevectorstrategiesintroductionpipientisAedesaegyptipopulationsshownsuccessreducingtransmissionfieldtrialsHowevertechnologyuntreatedwell-knownestimatesPEMETHODS:syntheticassumptionpartialevaluatelong-runningoperationaltrialcompriseweightedsumnon-spilloverconstructedpre-interventionperiodaccounthistoricalimbalancestrajectoriescompareddirectly/spillover-treatedestimateimpactcalendaryearRobustnessincludingvisualinspectionsroot-mean-squareerrorRMSEcalculationsin-spacein-timeplaceboinspectmodel'sattributinginterventionsFINDINGS:expressedpercentagecasecomparingactualintervention/spilloverFindingsindicate6435%6350-6671usingdirectlytreatedcorresponding18021768-1932Meanwhileeffectscontributed3769%3645-3849adjacentnon-interventionaccounting115104-132Trackingrevealeddose-responserelationshipincreasedconcomitantlyfrequencyModelconfirmedrobustnessresultsascertainedartefactselectionpre-trendspredictivefittedINTERPRETATION:effectivelydiminishedsurroundingregionsdualhighlightspotentialWolbachia-infectedmosquitoessustainablecost-effectivestrategyFUNDING:researchhostedCNRS@CREATEsupportedNationalFoundationPrimeMinister'sOfficeSingaporeCampusExcellenceTechnologicalEnterpriseCREATEprogramLeeKongChianSchoolMedicine-MinistryEducationStart-UpGrantoriginalHoffmannet al2024WellcomeTrustAwards226166108508202888MinistryHealthNMRR-16-297-28898AssessingcombatPartialSpilloverVector

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