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Published in: Malaria Journal 1/2016

Open Access 01-12-2016 | Research

Larval habitats of the Anopheles farauti and Anopheles lungae complexes in the Solomon Islands

Authors: Tanya L. Russell, Thomas R. Burkot, Hugo Bugoro, Allan Apairamo, Nigel W. Beebe, Weng K. Chow, Robert D. Cooper, Frank H. Collins, Neil F. Lobo

Published in: Malaria Journal | Issue 1/2016

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Abstract

Background

There is an urgent need for vector control tools to supplement long-lasting insecticidal nets (LLINs) and indoor residual spraying; particularly in the Solomon Islands where the primary vector, Anopheles farauti, is highly anthropophagic and feeds mainly outdoors and early in the evening. Currently, the only supplementary tool recommended by the World Health Organization is larval source management (LSM). The feasibility and potential effectiveness of LSM requires information on the distribution of anophelines, the productivity of larval habitats and the potential impacts of larval control on adult fitness.

Methods

The distribution of anophelines in Central and Western Provinces in the Solomon Islands was mapped from cross-sectional larval habitat surveys. The composition and micro-distribution of larval instars within a large permanent river-mouth lagoon was examined with a longitudinal survey. Density-dependent regulation of An. farauti larvae was investigated by longitudinally following the development and survival of different densities of first instars in floating cages in a river-mouth lagoon.

Results

Five anopheline species were molecularly identified from a range of fresh and brackish water habitats: An. farauti s.s., An. hinesorum, An. lungae, An. nataliae and An. solomonis. The most common habitats used by the primary malaria vector, An. farauti, were coastal lagoons and swamps. In the detailed study of lagoon micro-productivity, An. farauti was non-uniformly distributed with highest densities found at collections sites most proximal and distal to the mouth of the lagoon. The survival of An. farauti larvae was more than twofold lower when larvae were held at the highest experimental density (1 larva per 3.8 cm2) when compared with the lowest density (1 larva per 38 cm2).

Conclusions

The only documented major malaria vector collected in larval surveys in both Central and Western Provinces was An. farauti. Lagoons and swamps, the most common, largest and (potentially) most productive larval sites of this malaria vector, were “few, fixed and findable” and theoretically, therefore, amenable to successful LSM. However, the immense scale and complexity of these ecosystems in which An. farauti larvae are found raises questions regarding the ability to effectively control the larvae, as incomplete larviciding could trigger density dependent effects resulting in increased larval survivorship. While LSM has the potential to significantly contribute to malaria control of this early and outdoor biting vector, more information on the distribution of larvae within these extensive habitats is required to maximize the effectiveness of LSM.
Literature
1.
go back to reference Russell TL, Beebe NW, Bugoro H, Apairamo A, Cooper RD, Lobo NF et al. Anopheles farauti is a homogeneous population that blood feeds early and outdoors in the Solomon Islands. Malar J. 2016. doi:10.1186/s12936-016-1194-9. Russell TL, Beebe NW, Bugoro H, Apairamo A, Cooper RD, Lobo NF et al. Anopheles farauti is a homogeneous population that blood feeds early and outdoors in the Solomon Islands. Malar J. 2016. doi:10.​1186/​s12936-016-1194-9.
2.
go back to reference Taylor B. Changes in the feeding behaviour of a malaria vector, Anopheles farauti Lav, following the use of DDT as a residual spray in houses in the British Solomon Islands Protectorate. Trans R Entomol Soc London. 1975;127:227–92. Taylor B. Changes in the feeding behaviour of a malaria vector, Anopheles farauti Lav, following the use of DDT as a residual spray in houses in the British Solomon Islands Protectorate. Trans R Entomol Soc London. 1975;127:227–92.
3.
go back to reference Paik Y-H, Avery JG. Problem areas in the malaria eradication programme in the British Solomon Islands. PNG Med J. 1973;17:61–7. Paik Y-H, Avery JG. Problem areas in the malaria eradication programme in the British Solomon Islands. PNG Med J. 1973;17:61–7.
5.
go back to reference Bugoro H, Iro’ofa C, Mackenzie D, Apairamo A, Hevalao W, Corcoran S, et al. Changes in vector species composition and current vector biology and behaviour will favour malaria elimination in Santa Isabel Province, Solomon Islands. Malar J. 2011;10:287. doi:10.1186/1475-2875-10-287.CrossRefPubMedPubMedCentral Bugoro H, Iro’ofa C, Mackenzie D, Apairamo A, Hevalao W, Corcoran S, et al. Changes in vector species composition and current vector biology and behaviour will favour malaria elimination in Santa Isabel Province, Solomon Islands. Malar J. 2011;10:287. doi:10.​1186/​1475-2875-10-287.CrossRefPubMedPubMedCentral
7.
go back to reference Russell TL, Beebe NW, Bugoro H, Apairamo A, Chow W, Cooper RD et al. Frequent blood feeding enables insecticide-treated nets to reduce transmission by mosquitoes that bite predominately outdoors. Malar J. 2016. doi:10.1186/s12936-016-1195-8. Russell TL, Beebe NW, Bugoro H, Apairamo A, Chow W, Cooper RD et al. Frequent blood feeding enables insecticide-treated nets to reduce transmission by mosquitoes that bite predominately outdoors. Malar J. 2016. doi:10.​1186/​s12936-016-1195-8.
8.
go back to reference WHO. Larval source management—a supplementary measure for malaria vector control. An operational manual. Geneva: World Health Organization; 2013. WHO. Larval source management—a supplementary measure for malaria vector control. An operational manual. Geneva: World Health Organization; 2013.
9.
go back to reference Tusting Lucy S, Thwing J, Sinclair D, Fillinger U, Gimnig J, Bonner Kimberly E, et al. Mosquito larval source management for controlling malaria. Cochrane Database Syst Rev. 2013;8:923. doi:10.1002/14651858.CD008923.pub2. Tusting Lucy S, Thwing J, Sinclair D, Fillinger U, Gimnig J, Bonner Kimberly E, et al. Mosquito larval source management for controlling malaria. Cochrane Database Syst Rev. 2013;8:923. doi:10.​1002/​14651858.​CD008923.​pub2.
10.
go back to reference Beebe NW, Bakotee H, Ellis JT, Cooper RD. Differential ecology of Anopheles puntucaltus and three members of the Anopheles farauti complex of mosquitoes on Guadalcanal, Solomon Islands, identified by PCR-RFLP analysis. Med Vet Entomol. 2000;41:308–12.CrossRef Beebe NW, Bakotee H, Ellis JT, Cooper RD. Differential ecology of Anopheles puntucaltus and three members of the Anopheles farauti complex of mosquitoes on Guadalcanal, Solomon Islands, identified by PCR-RFLP analysis. Med Vet Entomol. 2000;41:308–12.CrossRef
11.
go back to reference Schmidt ER, Foley DH, Bugoro H, Bryan JH. A morphological study of the Anopheles punctulatus group (Diptera: Culicidae) in the Solomon Islands, with a description of Anopheles (Cellia) irenicus Schmidt, sp. n. Bull Entomol Res. 2003;93:515–26. doi:10.1079/BER2003267.CrossRefPubMed Schmidt ER, Foley DH, Bugoro H, Bryan JH. A morphological study of the Anopheles punctulatus group (Diptera: Culicidae) in the Solomon Islands, with a description of Anopheles (Cellia) irenicus Schmidt, sp. n. Bull Entomol Res. 2003;93:515–26. doi:10.​1079/​BER2003267.CrossRefPubMed
12.
go back to reference Belkin JN. The mosquitoes of the South Pacific (Diptera, Culicidae). Berkeley and Los Angeles: University of California Press; 1962. Belkin JN. The mosquitoes of the South Pacific (Diptera, Culicidae). Berkeley and Los Angeles: University of California Press; 1962.
13.
go back to reference Taylor B. Observations on malaria vectors of the Anopheles punctulatus complex in the British Solomon Islands Protectorate. J Med Entomol. 1975;11:677–87.CrossRefPubMed Taylor B. Observations on malaria vectors of the Anopheles punctulatus complex in the British Solomon Islands Protectorate. J Med Entomol. 1975;11:677–87.CrossRefPubMed
14.
go back to reference Sweeney AW. Larval salinity tolerances of the sibling species of Anopheles farauti. J Am Mosq Control Assoc. 1987;8(4):589–92. Sweeney AW. Larval salinity tolerances of the sibling species of Anopheles farauti. J Am Mosq Control Assoc. 1987;8(4):589–92.
15.
go back to reference Bell D, Bryan J, Cameron A, Foley D, Pholsyna K. Salinity tolerance of Anopheles farauti Laveran sensu stricto. PNG Med J. 1999;42:5–9. Bell D, Bryan J, Cameron A, Foley D, Pholsyna K. Salinity tolerance of Anopheles farauti Laveran sensu stricto. PNG Med J. 1999;42:5–9.
16.
go back to reference Cooper RD, Waterson DGE, Frances SP, Beebe NW, Sweeney AW. Speciation and distribution of the members of the Anopheles punctulatus (Diptera: Culicidae) group in Papua New Guinea. J Med Entomol. 2002;39:16–27.CrossRefPubMed Cooper RD, Waterson DGE, Frances SP, Beebe NW, Sweeney AW. Speciation and distribution of the members of the Anopheles punctulatus (Diptera: Culicidae) group in Papua New Guinea. J Med Entomol. 2002;39:16–27.CrossRefPubMed
17.
go back to reference Daggy RH. The biology and seasonal cycle of Anopheles farauti on Espirtu Santo, New Hebrides. Ann Entomol Soc Am. 1945;38:3–13. Daggy RH. The biology and seasonal cycle of Anopheles farauti on Espirtu Santo, New Hebrides. Ann Entomol Soc Am. 1945;38:3–13.
18.
go back to reference Sweeney AW. Variations in density of Anopheles farauti Laveran in the Carteret Islands. PNG Med J. 1968;11:11–8. Sweeney AW. Variations in density of Anopheles farauti Laveran in the Carteret Islands. PNG Med J. 1968;11:11–8.
19.
20.
go back to reference Hii JLK, Kanai L, Foligela A, Kan SKP, Burkot TR, Wirtz RA. Impact of permethrin-impregnated mosquito nets compared with DDT house spraying against malaria transmission by Anopheles farauti and An. punctulatus in the Solomon Islands. Med Vet Entomol. 1993;7:333–8.CrossRefPubMed Hii JLK, Kanai L, Foligela A, Kan SKP, Burkot TR, Wirtz RA. Impact of permethrin-impregnated mosquito nets compared with DDT house spraying against malaria transmission by Anopheles farauti and An. punctulatus in the Solomon Islands. Med Vet Entomol. 1993;7:333–8.CrossRefPubMed
21.
go back to reference Hii JLK, Birley MH, Kanai L, Foligeli A, Wagner J. Comparative effects of permethrin-impregnated bednets and DDT house spraying on survival rates and oviposition interval of Anopheles farauti No. 1 (Diptera: Culicidae) in Solomon Islands. Ann Trop Med Parasitol. 1995;89:521–9.PubMed Hii JLK, Birley MH, Kanai L, Foligeli A, Wagner J. Comparative effects of permethrin-impregnated bednets and DDT house spraying on survival rates and oviposition interval of Anopheles farauti No. 1 (Diptera: Culicidae) in Solomon Islands. Ann Trop Med Parasitol. 1995;89:521–9.PubMed
24.
go back to reference Yang G-J, Brook BW, Whelan PI, Cleland S, Bradshaw CJA. Endogenous and exogenous factors controlling temporal abundance patterns of tropical mosquitoes. Ecol Appl. 2008;18:2028–40. doi:10.1890/07-1209.1.CrossRefPubMed Yang G-J, Brook BW, Whelan PI, Cleland S, Bradshaw CJA. Endogenous and exogenous factors controlling temporal abundance patterns of tropical mosquitoes. Ecol Appl. 2008;18:2028–40. doi:10.​1890/​07-1209.​1.CrossRefPubMed
25.
go back to reference Russell TL, Lwetoijera DW, Knols BGJ, Takken W, Killeen GF, Ferguson HM. Linking individual phenotype to density-dependent population growth: the influence of body size on the population dynamics of malaria vectors. Proc R Soc Lond B. 2011;278:3142–51. doi:10.1098/rspb.2011.0153.CrossRef Russell TL, Lwetoijera DW, Knols BGJ, Takken W, Killeen GF, Ferguson HM. Linking individual phenotype to density-dependent population growth: the influence of body size on the population dynamics of malaria vectors. Proc R Soc Lond B. 2011;278:3142–51. doi:10.​1098/​rspb.​2011.​0153.CrossRef
26.
go back to reference Gimnig JE, Ombok M, Otieno S, Kaufman MG, Vulule JM, Walker ED. Density-dependent development of Anopheles gambiae (Diptera: Culicidae) larvae in artificial habitats. J Med Entomol. 2002;39:162–72.CrossRefPubMed Gimnig JE, Ombok M, Otieno S, Kaufman MG, Vulule JM, Walker ED. Density-dependent development of Anopheles gambiae (Diptera: Culicidae) larvae in artificial habitats. J Med Entomol. 2002;39:162–72.CrossRefPubMed
28.
go back to reference Lyimo E, Takken W, Koella JC. Effect of rearing temperature and larval density on larval survival, age at pupation and adult body size of Anopheles gambiae. Entomol Exp Appl. 1992;63:265–71.CrossRef Lyimo E, Takken W, Koella JC. Effect of rearing temperature and larval density on larval survival, age at pupation and adult body size of Anopheles gambiae. Entomol Exp Appl. 1992;63:265–71.CrossRef
29.
go back to reference Brookfield HC, Hart D. Rainfall in the tropical southwest Pacific. Canberra: Department of Geography, Publ G/3, The Australian National University; 1966. Brookfield HC, Hart D. Rainfall in the tropical southwest Pacific. Canberra: Department of Geography, Publ G/3, The Australian National University; 1966.
30.
go back to reference Beebe NW, Saul A. Discrimination of all members of the Anopheles punctulatus complex by polymerase chain reaction - restriction fragment length polymorphism analysis. Am J Trop Med Hyg. 1995;53:478–81.PubMed Beebe NW, Saul A. Discrimination of all members of the Anopheles punctulatus complex by polymerase chain reaction - restriction fragment length polymorphism analysis. Am J Trop Med Hyg. 1995;53:478–81.PubMed
31.
32.
go back to reference Russell TL, Burkot TR, Bugoro H, Apairamo A, Beebe NW, Chow WK et al. Data archive: Larval habitats of the Anopheles farauti and Anopheles lungae complexes in the Solomon Islands. James Cook University Tropical Data Hub; 2016. [Data Files]. doi:10.4225/28/56C6511C9B57D. Russell TL, Burkot TR, Bugoro H, Apairamo A, Beebe NW, Chow WK et al. Data archive: Larval habitats of the Anopheles farauti and Anopheles lungae complexes in the Solomon Islands. James Cook University Tropical Data Hub; 2016. [Data Files]. doi:10.​4225/​28/​56C6511C9B57D.
33.
go back to reference Core Team R. R: A language and environment for statistical computing. Vienna: R Foundation for Statistical, Computing; 2013. Core Team R. R: A language and environment for statistical computing. Vienna: R Foundation for Statistical, Computing; 2013.
34.
go back to reference Spencer T, Spencer M, Venters D. Malaria vectors in Papua New Guinea. PNG Med J. 1974;17:22. Spencer T, Spencer M, Venters D. Malaria vectors in Papua New Guinea. PNG Med J. 1974;17:22.
35.
go back to reference Slooff R. Observations on the effect of residual DDT house spraying on behaviour and mortality in species of the Anopheles punctulatus group. Final report on a research project in West New Guinea [PhD Thesis]. Leyden: University of Leyden; 1964. Slooff R. Observations on the effect of residual DDT house spraying on behaviour and mortality in species of the Anopheles punctulatus group. Final report on a research project in West New Guinea [PhD Thesis]. Leyden: University of Leyden; 1964.
36.
go back to reference Samarawickrema WA, Parkinson AD, Kere N. Seasonal abundance and biting behaviour of Anopheles punctulatus and An. koliensis in Malaita Province, Solomon Islands, and a trial of permethrin impregnated bednets against malaria transmission. Med Vet Entomol. 1992;6:371–8.CrossRefPubMed Samarawickrema WA, Parkinson AD, Kere N. Seasonal abundance and biting behaviour of Anopheles punctulatus and An. koliensis in Malaita Province, Solomon Islands, and a trial of permethrin impregnated bednets against malaria transmission. Med Vet Entomol. 1992;6:371–8.CrossRefPubMed
37.
go back to reference Foley DH, Meek SR, Bryan JH. The Anopheles punctulatus group of mosquitoes in the Solomon Islands and Vanuatu surveyed by allozyme electrophoresis. Med Vet Entomol. 1994;8:340–50.CrossRefPubMed Foley DH, Meek SR, Bryan JH. The Anopheles punctulatus group of mosquitoes in the Solomon Islands and Vanuatu surveyed by allozyme electrophoresis. Med Vet Entomol. 1994;8:340–50.CrossRefPubMed
38.
go back to reference Kokko H. Optimal and suboptimal use of compensatory responses to harvesting: timing of hunting as an example. Wildl Biol. 2001;7:141–50. Kokko H. Optimal and suboptimal use of compensatory responses to harvesting: timing of hunting as an example. Wildl Biol. 2001;7:141–50.
40.
go back to reference WHO. Interim position statement—the role of larviciding for malaria control in sub-Saharan Africa. Geneva: World Health Organization; 2012. WHO. Interim position statement—the role of larviciding for malaria control in sub-Saharan Africa. Geneva: World Health Organization; 2012.
Metadata
Title
Larval habitats of the Anopheles farauti and Anopheles lungae complexes in the Solomon Islands
Authors
Tanya L. Russell
Thomas R. Burkot
Hugo Bugoro
Allan Apairamo
Nigel W. Beebe
Weng K. Chow
Robert D. Cooper
Frank H. Collins
Neil F. Lobo
Publication date
01-12-2016
Publisher
BioMed Central
Published in
Malaria Journal / Issue 1/2016
Electronic ISSN: 1475-2875
DOI
https://doi.org/10.1186/s12936-016-1196-7

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