Literature DB >> 16892622

Developing an evidence-based decision support system for rational insecticide choice in the control of African malaria vectors.

Michael Coleman1, Brian Sharp, Ishen Seocharan, Janet Hemingway.   

Abstract

The emergence of Anopheles species resistant to insecticides widely used in vector control has the potential to impact directly on the control of malaria. This may have a particularly dramatic effect in Africa, where pyrethroids impregnated onto bed-nets are the dominant insecticides used for vector control. Because the same insecticides are used for crop pests, the extensive use and misuse of insecticides for agriculture has contributed to the resistance problem in some vectors. The potential for resistance to develop in African vectors has been apparent since the 1950s, but the scale of the problem has been poorly documented. A geographical information system-based decision support system for malaria control has recently been established in Africa and used operationally in Mozambique. The system incorporates climate data and disease transmission rates, but to date it has not incorporated spatial or temporal data on vector abundance or insecticide resistance. As a first step in incorporating this information, available published data on insecticide resistance in Africa has now been collated and incorporated into this decision support system. Data also are incorporated onto the openly available Mapping Malaria Risk in Africa (MARA) Web site (http://www.mara.org.za). New data, from a range of vector population-monitoring initiatives, can now be incorporated into this open access database to allow a spatial understanding of resistance distribution and its potential impact on disease transmission to benefit vector control programs.

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Year:  2006        PMID: 16892622     DOI: 10.1603/0022-2585(2006)43[663:daedss]2.0.co;2

Source DB:  PubMed          Journal:  J Med Entomol        ISSN: 0022-2585            Impact factor:   2.278


  24 in total

1.  Use of Google Earth to strengthen public health capacity and facilitate management of vector-borne diseases in resource-poor environments.

Authors:  Saul Lozano-Fuentes; Darwin Elizondo-Quiroga; Jose Arturo Farfan-Ale; Maria Alba Loroño-Pino; Julian Garcia-Rejon; Salvador Gomez-Carro; Victor Lira-Zumbardo; Rosario Najera-Vazquez; Ildefonso Fernandez-Salas; Joaquin Calderon-Martinez; Marco Dominguez-Galera; Pedro Mis-Avila; Natashia Morris; Michael Coleman; Chester G Moore; Barry J Beaty; Lars Eisen
Journal:  Bull World Health Organ       Date:  2008-09       Impact factor: 9.408

2.  A set of ontologies to drive tools for the control of vector-borne diseases.

Authors:  Pantelis Topalis; Emmanuel Dialynas; Elvira Mitraka; Elena Deligianni; Inga Siden-Kiamos; Christos Louis
Journal:  J Biomed Inform       Date:  2010-04-02       Impact factor: 6.317

Review 3.  Developing global maps of the dominant anopheles vectors of human malaria.

Authors:  Simon I Hay; Marianne E Sinka; Robi M Okara; Caroline W Kabaria; Philip M Mbithi; Carolynn C Tago; David Benz; Peter W Gething; Rosalind E Howes; Anand P Patil; William H Temperley; Michael J Bangs; Theeraphap Chareonviriyaphap; Iqbal R F Elyazar; Ralph E Harbach; Janet Hemingway; Sylvie Manguin; Charles M Mbogo; Yasmin Rubio-Palis; H Charles J Godfray
Journal:  PLoS Med       Date:  2010-02-09       Impact factor: 11.069

Review 4.  Insecticide control of vector-borne diseases: when is insecticide resistance a problem?

Authors:  Ana Rivero; Julien Vézilier; Mylène Weill; Andrew F Read; Sylvain Gandon
Journal:  PLoS Pathog       Date:  2010-08-05       Impact factor: 6.823

5.  Pyrethroid and organophosphates resistance in Anopheles (N.) nuneztovari Gabaldón populations from malaria endemic areas in Colombia.

Authors:  Idalyd Fonseca-González; Rocío Cárdenas; Martha L Quiñones; Janet McAllister; William G Brogdon
Journal:  Parasitol Res       Date:  2009-08-05       Impact factor: 2.289

6.  Bio-efficacy of selected long-lasting insecticidal nets against pyrethroid resistant Anopheles arabiensis from South-Western Ethiopia.

Authors:  Delenasaw Yewhalaw; Abebe Asale; Kora Tushune; Yehenew Getachew; Luc Duchateau; Niko Speybroeck
Journal:  Parasit Vectors       Date:  2012-08-07       Impact factor: 3.876

7.  Multi-disease data management system platform for vector-borne diseases.

Authors:  Lars Eisen; Marlize Coleman; Saul Lozano-Fuentes; Nathan McEachen; Miguel Orlans; Michael Coleman
Journal:  PLoS Negl Trop Dis       Date:  2011-03-29

8.  Status of pesticide management in the practice of vector control: a global survey in countries at risk of malaria or other major vector-borne diseases.

Authors:  Henk van den Berg; Jeffrey Hii; Agnes Soares; Abraham Mnzava; Birkinesh Ameneshewa; Aditya P Dash; Mikhail Ejov; Soo Hian Tan; Graham Matthews; Rajpal S Yadav; Morteza Zaim
Journal:  Malar J       Date:  2011-05-14       Impact factor: 2.979

Review 9.  Global status of DDT and its alternatives for use in vector control to prevent disease.

Authors:  Henk van den Berg
Journal:  Environ Health Perspect       Date:  2009-05-29       Impact factor: 9.031

10.  Impact of pyrethroid resistance on operational malaria control in Malawi.

Authors:  Charles S Wondji; Michael Coleman; Immo Kleinschmidt; Themba Mzilahowa; Helen Irving; Miranda Ndula; Andrea Rehman; John Morgan; Kayla G Barnes; Janet Hemingway
Journal:  Proc Natl Acad Sci U S A       Date:  2012-11-01       Impact factor: 11.205

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