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This study evaluated whether Wolbachia-based mosquito control using infected males (IIT) would remain effective under future climate change scenarios for suppressing Aedes aegypti and Ae. albopictus populations. Using mosquito abundance data from Singapore, China, the EU, and US, combined with climate projections and thermal stability experiments, researchers developed a climate-driven model to simulate IIT implementation from 2050-2100. The analysis found that IIT can effectively suppress wild-type mosquito populations across all future climate scenarios, including high heat conditions, though effectiveness depends critically on mosquito migration rates, release ratios, intervals, and strategies.
Why it matters
This research provides evidence that Wolbachia-based mosquito control could remain a viable tool for preventing dengue, Zika, and other Aedes-transmitted diseases as global temperatures rise. The findings help public health agencies plan long-term vector control strategies by identifying key operational parameters that determine success under climate change conditions.
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⚠️ Preprint – Noch nicht peer-reviewed
Dieser Artikel wurde noch nicht von unabhängigen Experten begutachtet. Die Ergebnisse sind vorläufig und sollten mit Vorsicht interpretiert werden.
Wolbachia-mediated incompatible-insect technique (IIT) via wAlbB, wMel or wPip/wAlbA/wAlbB strains are promising approaches for suppressing wildtype Aedes mosquitoes and therefore Aedes-borne diseases. Yet, the effectiveness of this technique under climate change remains uncertain. Here, we evaluate the long-term robustness of male Wolbachia-infected mosquito releases to suppress wildtype Aedes aegypti and Ae. albopictus populations across future climate scenarios across diverse geographical regions. We compiled large publicly available datasets on Aedes abundance across Singapore, China, the European Union and the United States, historical and projected climatic conditions in these regions and conducted experiments to test the thermal stability of cytoplasmic incompatibility in Wolbachia-infected male Aedes aegypti and albopictus. A climatically-driven entomological model was developed and calibrated using a Bayesian approach to model observed Aedes population dynamics and infer area-specific climate-driven variation in mosquito life-history traits. We back-inferred historical mosquito abundance and projected mosquito abundance in future climate change scenarios incorporating experimental and locally inferred entomological parameters and then simulated the counterfactual implementation of IIT in these regions. We find that Aedes populations are projected to increase in most regions across all climate change scenarios from 2050-2100 even under high heat conditions in the absence of interventions. While we found that IIT can suppress wild-type populations effectively across all future scenarios and in high heat conditions, effectiveness was found to depend heavily on mosquito emigration rates, overflooding ratios, release intervals and release strategies Extensive robustness checks confirmed that the model reproduced historical temporal trends, captured the influence of individual parameters on outcome and was sensitive to changes in values of inferred parameters and implement policy. These findings demonstrate that IIT may be a robust vector control tool under future climate conditions.
Source: Robustness of Wolbachia-mediated incompatible-insect technique to future climate change scenarios