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Naturally Occurring Microbiota Associated with Mosquito Breeding Habitats and Their Effects on Mosquito Larvae

Overview
Journal Biomed Res Int
Publisher Wiley
Date 2020 Dec 31
PMID 33381553
Citations 8
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Abstract

Immature mosquitoes are aquatic, and their distribution, abundance, and individual fitness in a particular breeding habitat are known to be dependent on mainly three factors: biotic factors, abiotic factors, and their interaction between each other and with other associated taxa. Mosquito breeding habitats harbor a diversified naturally occurring microbiota assemblage, and the biota have different types of interactions with mosquito larvae in those habitats. Those interactions may include parasitism, pathogenism, predation, and competition which cause the mortality of larvae, natural reduction of larval abundance, or alterations in their growth. Many microbiota species serve as food items for mosquito larvae, and there are also some indigestible or toxic phytoplanktons to larvae. However, when there is coexistence or mutualism of different mosquito species along with associated microbiota, they form a community sharing the habitat requirements. With the available literature, it is evident that the abundance of mosquito larvae is related to the densities of associated microbiota and their composition in that particular breeding habitat. Potential antagonist microbiota which are naturally occurring in mosquito breeding habitats could be used in integrated vector control approaches, and this method rises as an ecofriendly approach in controlling larvae in natural habitats themselves. To date, this aspect has received less attention; only a limited number of species of microbiota inhabiting mosquito breeding habitats have been recorded, and detailed studies on microbiota assemblage in relation to diverse vector mosquito breeding habitats and their association with mosquito larvae are few. Therefore, future studies on this important ecological aspect are encouraged. Such studies may help to identify field characteristic agents that can serve as mosquito controlling candidates in their natural habitats themselves.

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References
1.
Alfonzo D, Grillet M, Liria J, Navarro J, Weaver S, Barrera R . Ecological characterization of the aquatic habitats of mosquitoes (Diptera: Culicidae) in enzootic foci of Venezuelan equine encephalitis virus in western Venezuela. J Med Entomol. 2005; 42(3):278-84. DOI: 10.1093/jmedent/42.3.278. View

2.
Coutinho-Abreu I, Zhu K, Ramalho-Ortigao M . Transgenesis and paratransgenesis to control insect-borne diseases: current status and future challenges. Parasitol Int. 2009; 59(1):1-8. PMC: 2824031. DOI: 10.1016/j.parint.2009.10.002. View

3.
Rey J, OConnell S, Suarez S, Menendez Z, Lounibos L, Byer G . Laboratory and field studies of Macrocyclops albidus (Crustacea: Copepoda) for biological control of mosquitoes in artificial containers in a subtropical environment. J Vector Ecol. 2004; 29(1):124-34. View

4.
Dada N, Vannavong N, Seidu R, Lenhart A, Stenstrom T, Chareonviriyaphap T . Relationship between Aedes aegypti production and occurrence of Escherichia coli in domestic water storage containers in rural and sub-urban villages in Thailand and Laos. Acta Trop. 2013; 126(3):177-85. DOI: 10.1016/j.actatropica.2013.02.023. View

5.
Corliss J . Natural infection of tropical mosquitoes by ciliated protozoa of the genus Tetrahymena. Trans R Soc Trop Med Hyg. 1961; 55:149-52. DOI: 10.1016/0035-9203(61)90019-0. View