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Published in: Malaria Journal 1/2017

Open Access 01-12-2017 | Research

Geographical distributions of African malaria vector sibling species and evidence for insecticide resistance

Authors: Antoinette Wiebe, Joshua Longbottom, Katherine Gleave, Freya M. Shearer, Marianne E. Sinka, N. Claire Massey, Ewan Cameron, Samir Bhatt, Peter W. Gething, Janet Hemingway, David L. Smith, Michael Coleman, Catherine L. Moyes

Published in: Malaria Journal | Issue 1/2017

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Abstract

Background

Many of the mosquito species responsible for malaria transmission belong to a sibling complex; a taxonomic group of morphologically identical, closely related species. Sibling species often differ in several important factors that have the potential to impact malaria control, including their geographical distribution, resistance to insecticides, biting and resting locations, and host preference. The aim of this study was to define the geographical distributions of dominant malaria vector sibling species in Africa so these distributions can be coupled with data on key factors such as insecticide resistance to aid more focussed, species-selective vector control.

Results

Within the Anopheles gambiae species complex and the Anopheles funestus subgroup, predicted geographical distributions for Anopheles coluzzii, An. gambiae (as now defined) and An. funestus (distinct from the subgroup) have been produced for the first time. Improved predicted geographical distributions for Anopheles arabiensis, Anopheles melas and Anopheles merus have been generated based on records that were confirmed using molecular identification methods and a model that addresses issues of sampling bias and past changes to the environment. The data available for insecticide resistance has been evaluated and differences between sibling species are apparent although further analysis is required to elucidate trends in resistance.

Conclusions

Sibling species display important variability in their geographical distributions and the most important malaria vector sibling species in Africa have been mapped here for the first time. This will allow geographical occurrence data to be coupled with species-specific data on important factors for vector control including insecticide resistance. Species-specific data on insecticide resistance is available for the most important malaria vectors in Africa, namely An. arabiensis, An. coluzzii, An. gambiae and An. funestus. Future work to combine these data with the geographical distributions mapped here will allow more focussed and resource-efficient vector control and provide information to greatly improve and inform existing malaria transmission models.
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Metadata
Title
Geographical distributions of African malaria vector sibling species and evidence for insecticide resistance
Authors
Antoinette Wiebe
Joshua Longbottom
Katherine Gleave
Freya M. Shearer
Marianne E. Sinka
N. Claire Massey
Ewan Cameron
Samir Bhatt
Peter W. Gething
Janet Hemingway
David L. Smith
Michael Coleman
Catherine L. Moyes
Publication date
01-12-2017
Publisher
BioMed Central
Published in
Malaria Journal / Issue 1/2017
Electronic ISSN: 1475-2875
DOI
https://doi.org/10.1186/s12936-017-1734-y

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