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Model stimulations to estimate malaria risk under climate change
T H Jetten1, W J Martens, W Takken
1Department of Entomology, Wageningen Agricultural University, The Netherlands.
Journal of Medical Entomology
|May 1, 1996
Summary
Malaria risk is increasing due to climate change. A new model predicts higher transmission potential in areas bordering endemic regions and at higher altitudes as temperatures rise.
Area of Science:
- Medical Entomology
- Epidemiology
- Climate Science
Background:
- Malaria's current geographic range is smaller than its potential, with some areas exhibiting "Anophelism without malaria" despite vector presence.
- Vectorial capacity is a key parameter for estimating malaria susceptibility, but a dynamic approach may offer better predictions.
Purpose of the Study:
- To utilize a dynamic concept of vectorial capacity with global climatological data as a risk indicator for malaria distribution.
- To assess the impact of temperature increases on malaria epidemic potential, particularly in regions with existing vectors but limited parasite development.
Main Methods:
- Global climatological data were used to compute a dynamic vectorial capacity.
- Sensitivity analysis was performed in three distinct geographic areas to evaluate changes in epidemic potential due to temperature increases.
- Climate scenarios were employed to predict future malaria risk.
Main Results:
- Dynamic vectorial capacity effectively predicts the current extent and distribution of malarious regions globally.
- Areas with the largest increase in epidemic potential under rising temperatures are those where mosquitoes are present but parasite development is temperature-limited.
- A 2-4 degrees C temperature increase is predicted to elevate malaria risk in bordering regions and higher altitudes within endemic zones.
Conclusions:
- Dynamic vectorial capacity serves as a valuable comparative risk indicator for malaria.
- Climate change, specifically rising temperatures, is projected to expand malaria risk into new areas and higher altitudes.
- Understanding these dynamics is crucial for predicting and managing future malaria distribution.