Literature DB >> 16630393

Aedes aegypti (Diptera: Culicidae) production from non-residential sites in the Amazonian city of Iquitos, Peru.

A C Morrison1, M Sihuincha, J D Stancil, E Zamora, H Astete, J G Olson, C Vidal-Ore, T W Scott.   

Abstract

Programmes for the surveillance of Aedes aegypti (L.) often focus on residential areas, ignoring non-residential sites. Between November 2003 and October 2004, pupal/demographic surveys were therefore conducted in non-residential sites in the Peruvian city of Iquitos. The sampled sites included schools, factories, ports, public markets, petrol stations, commercial zones, airports, government buildings, animal-production areas, and recreational areas. Compared with the residential sites that had been surveyed a few years earlier, the non-residential sites generally had fewer pupae/ha, even though pupae were found in a high percentage of the sites investigated. Nonetheless, although <56 pupae/ha were observed in the industrial, commercial, recreational and school sites, the river boats in the ports and the areas in and around public markets sometimes had pupal abundances (of 122-213 pupae/ha) that were comparable with those previously recorded in the residential sites. When the relative production of Ae. aegypti was calculated by container type and characteristic (lidded/lidless, indoors/outdoors, and water-use patterns), no single container category was found to be a major producer of Ae. aegypti, with the exception of flower vases in cemeteries. In general, almost all (97%) of the pupae collected in the non-residential sites came from unlidded containers, although 91% of those collected in river boats came from lidded storage areas. With the exception of lumber mills, plant nurseries and markets (where only 39%-60% of the pupae were collected outdoors), >70% of pupal production was outdoors. In commercial areas, 41% of the pupae came from manually-filled containers, compared with <12% in residential sites. These results indicate that non-residential sites can be highly productive for Ae. aegypti and that the role of such sites in dengue transmission requires further investigation.

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Year:  2006        PMID: 16630393     DOI: 10.1179/136485906X105534

Source DB:  PubMed          Journal:  Ann Trop Med Parasitol        ISSN: 0003-4983


  35 in total

1.  Eco-bio-social determinants of dengue vector breeding: a multicountry study in urban and periurban Asia.

Authors:  Natarajan Arunachalam; Susilowati Tana; Fe Espino; Pattamaporn Kittayapong; Wimal Abeyewickreme; Khin Thet Wai; Brij Kishore Tyagi; Axel Kroeger; Johannes Sommerfeld; Max Petzold
Journal:  Bull World Health Organ       Date:  2010-03       Impact factor: 9.408

2.  Using adult mosquitoes to transfer insecticides to Aedes aegypti larval habitats.

Authors:  Gregor J Devine; Elvira Zamora Perea; Gerry F Killeen; Jeffrey D Stancil; Suzanne J Clark; Amy C Morrison
Journal:  Proc Natl Acad Sci U S A       Date:  2009-06-26       Impact factor: 11.205

3.  House-to-house human movement drives dengue virus transmission.

Authors:  Steven T Stoddard; Brett M Forshey; Amy C Morrison; Valerie A Paz-Soldan; Gonzalo M Vazquez-Prokopec; Helvio Astete; Robert C Reiner; Stalin Vilcarromero; John P Elder; Eric S Halsey; Tadeusz J Kochel; Uriel Kitron; Thomas W Scott
Journal:  Proc Natl Acad Sci U S A       Date:  2012-12-31       Impact factor: 11.205

4.  Stormwater drains and catch basins as sources for production of Aedes aegypti and Culex quinquefasciatus.

Authors:  Roger Arana-Guardia; Carlos M Baak-Baak; María Alba Loroño-Pino; Carlos Machain-Williams; Barry J Beaty; Lars Eisen; Julián E García-Rejón
Journal:  Acta Trop       Date:  2014-02-26       Impact factor: 3.112

5.  A geographical sampling method for surveys of mosquito larvae in an urban area using high-resolution satellite imagery.

Authors:  Adriana Troyo; Douglas O Fuller; Olger Calderón-Arguedas; John C Beier
Journal:  J Vector Ecol       Date:  2008-06       Impact factor: 1.671

6.  Patterns of Aedes aegypti (Diptera: Culicidae) infestation and container productivity measured using pupal and Stegomyia indices in northern Argentina.

Authors:  F M Garelli; M O Espinosa; D Weinberg; H D Coto; M S Gaspe; R E Gürtler
Journal:  J Med Entomol       Date:  2009-09       Impact factor: 2.278

7.  Evidence for Aedes aegypti (Diptera: Culicidae) Oviposition on Boats in the Peruvian Amazon.

Authors:  Sarah Anne Guagliardo; Amy C Morrison; Jose Luis Barboza; Dawn M Wesson; Loganathan Ponnusamy; Helvio Astete; Gonzalo Vazquez-Prokopec; Uriel Kitron
Journal:  J Med Entomol       Date:  2015-05-07       Impact factor: 2.278

8.  Usefulness of commercially available GPS data-loggers for tracking human movement and exposure to dengue virus.

Authors:  Gonzalo M Vazquez-Prokopec; Steven T Stoddard; Valerie Paz-Soldan; Amy C Morrison; John P Elder; Tadeusz J Kochel; Thomas W Scott; Uriel Kitron
Journal:  Int J Health Geogr       Date:  2009-11-30       Impact factor: 3.918

9.  Skeeter Buster: a stochastic, spatially explicit modeling tool for studying Aedes aegypti population replacement and population suppression strategies.

Authors:  Krisztian Magori; Mathieu Legros; Molly E Puente; Dana A Focks; Thomas W Scott; Alun L Lloyd; Fred Gould
Journal:  PLoS Negl Trop Dis       Date:  2009-09-01

10.  Effects of a five-year citywide intervention program to control Aedes aegypti and prevent dengue outbreaks in northern Argentina.

Authors:  Ricardo E Gürtler; Fernando M Garelli; Héctor D Coto
Journal:  PLoS Negl Trop Dis       Date:  2009-04-28
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