Literature DB >> 16474086

Use of the pupal survey technique for measuring Aedes aegypti (Diptera: Culicidae) productivity in Puerto Rico.

Roberto Barrera1, Manuel Amador, Gary G Clark.   

Abstract

The hypothesis tested was that most pupae of Aedes aegypti are produced in a few types of containers so that vector control efforts could concentrate on eliminating the most productive ones and thus prevent dengue outbreaks. Pupal surveys were conducted twice in 2004 in an urban area in southern Puerto Rico. A total 35,030 immature mosquitoes (III and IV instars, pupae) was counted in 1,367 containers found with water in 624 premises during the first survey. Only pupae were counted in the second survey in 829 premises, 257 of which had containers with water, and 124 contained Ae. aegypti pupae (15%, 22% in the first survey). We found fewer (583) containers with water than in the first survey, but 202 had pupae (35%; 18.5% in first survey). Containers yielded 3,189 Ae. aegypti pupae, which was slightly fewer than those found in the first survey (3,388 pupae). The hypothesis was supported by the data, showing that 7 of 18 types of containers contained 80% of all female pupae. The most productive containers generally were also common. We used several criteria (i.e., container use, two-step cluster analysis based on environmental variables of containers and premises) to classify the containers and premises and to evaluate pupal distribution at various spatial scales (container, premise, and residences versus public areas). Most pupae were in 4 of 10 types of container usage categories. The cluster technique showed that most pupae were in unattended, rain-filled containers in the yards, particularly in receptacles in the shade of trees that received rainfall through foliage and had lower water temperatures. Pupal counts were adjusted to a negative binomial distribution, confirming their highly aggregated dispersal pattern. Cluster analysis showed that 61.3% of female pupae were in 40 (6.4%) of 624 premises that had in common their larger yards, number of trees, and container water volume. Using number of Ae. aegypti larvae, Breteau Index, or the presence of immature forms as indicators of pupal productivity is not as efficient in identifying the most productive types of containers as direct pupal counts.

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Year:  2006        PMID: 16474086

Source DB:  PubMed          Journal:  Am J Trop Med Hyg        ISSN: 0002-9637            Impact factor:   2.345


  32 in total

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Authors:  H Padmanabha; E Soto; M Mosquera; C C Lord; L P Lounibos
Journal:  Ecohealth       Date:  2010-04-01       Impact factor: 3.184

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

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6.  Seasonal profiles of Aedes aegypti (Diptera: Culicidae) larval habitats in an urban area of Costa Rica with a history of mosquito control.

Authors:  Adriana Troyo; Olger Calderón-Arguedas; Douglas O Fuller; Mayra E Solano; Adrian Avendaño; Kristopher L Arheart; Dave D Chadee; John C Beier
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7.  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
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8.  Vacant lots: productive sites for Aedes (Stegomyia) aegypti (Diptera: Culicidae) in Mérida City, México.

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Journal:  J Med Entomol       Date:  2014-03       Impact factor: 2.278

9.  Mosquito-producing containers, spatial distribution, and relationship between Aedes aegypti population indices on the southern boundary of its distribution in South America (Salto, Uruguay).

Authors:  César Basso; Ruben M Caffera; Elsa García da Rosa; Rosario Lairihoy; Cristina González; Walter Norbis; Ingrid Roche
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10.  Urban structure and dengue fever in Puntarenas, Costa Rica.

Authors:  Adriana Troyo; Douglas O Fuller; Olger Calderón-Arguedas; Mayra E Solano; John C Beier
Journal:  Singap J Trop Geogr       Date:  2009-07-01
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