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1.
Sci Rep ; 10(1): 6803, 2020 04 22.
Article in English | MEDLINE | ID: mdl-32321946

ABSTRACT

Aedes aegypti is the main vector of arboviral diseases such as dengue, chikungunya and Zika. A key feature for disease transmission modeling and vector control planning is adult mosquito dispersal. We studied Ae aegypti adult dispersal by conducting a mark-capture study of naturally occurring Ae. aegypti from discarded containers found along a canal that divided two residential communities in Donna, Texas, USA. Stable isotopes were used to enrich containers with either 13C or 15N. Adult mosquitoes were collected outdoors in the yards of households throughout the communities with BG Sentinel 2 traps during a 12-week period. Marked mosquito pools with stable isotopes were used to estimate the mean distance travelled using three different approaches (Net, Strip or Circular) and the probability of detecting an isotopically marked adult at different distances from the larval habitat of origin. We consistently observed, using the three approaches that male (Net: 220 m, Strip: 255 m, Circular: 250 m) Ae. aegypti dispersed further in comparison to gravid (Net: 135 m, Strip: 176 m, Circular: 189 m) and unfed females (Net: 192 m, Strip: 213 m, Circular: 198 m). We also observed that marked male capture probability slightly increased with distance, while, for both unfed and gravid females, such probability decreased with distance. Using a unique study design documenting adult dispersal from natural larval habitat, our results suggest that Ae. aegypti adults disperse longer distances than previously reported. These results may help guide local vector control authorities in their fight against Ae. aegypti and the diseases it transmits, suggesting coverage of 200 m for the use of insecticides and innovative vector control tools.


Subject(s)
Carbon Isotopes/metabolism , Ecosystem , Environment , Mosquito Control/methods , Nitrogen Isotopes/metabolism , Algorithms , Animals , Chikungunya Fever/prevention & control , Chikungunya Fever/transmission , Chikungunya Fever/virology , Dengue/prevention & control , Dengue/transmission , Dengue/virology , Female , Humans , Insecticides/pharmacology , Male , Models, Theoretical , Mosquito Control/instrumentation , Mosquito Vectors/drug effects , Mosquito Vectors/metabolism , Mosquito Vectors/virology , Texas , Zika Virus Infection/prevention & control , Zika Virus Infection/transmission , Zika Virus Infection/virology
2.
J Med Entomol ; 57(2): 649-652, 2020 02 27.
Article in English | MEDLINE | ID: mdl-31751467

ABSTRACT

The use of stable isotope enrichment to mark mosquitoes has provided a tool to study the biology of vector species. In this study, we evaluated isotopic marking of Aedes aegypti (L.) (Diptera: Culicidae) in a laboratory setting. We determined the optimal dosage for marking adult Ae. aegypti mosquitoes with 13C and 15N. Additionally, Ae. aegypti mosquitoes were single and dually marked with 13C and 15N for up to 60 d postemergence without changes to adult body size or transgenerational marking. This report adds to the growing literature that explores the use of alternative marking methods for ecological and vector biology studies.


Subject(s)
Aedes , Carbon Isotopes/analysis , Entomology/methods , Mosquito Control/methods , Mosquito Vectors , Nitrogen Isotopes/analysis , Animals , Ecology/methods , Female , Male
3.
Parasit Vectors ; 12(1): 411, 2019 Aug 22.
Article in English | MEDLINE | ID: mdl-31439006

ABSTRACT

BACKGROUND: Stable isotope labeling is a promising method for use in insect mark-capture and dispersal studies. Culicoides biting midges, which transmit several important animal pathogens, including bluetongue virus (BTV) and epizootic hemorrhagic disease virus (EHDV), are small flies that develop in various semi-aquatic habitats. Previous Culicoides dispersal studies have suffered from the limitations of other labeling techniques, and an inability to definitively connect collected adult midges to specific immature development sites. RESULTS: Adult C. sonorensis were successfully labeled with 13C and 15N stable isotopes as larvae developing in a semi-aquatic mud substrate in the laboratory. High and low-dose isotope treatments for both elements significantly enriched midges above the background isotope levels of unenriched controls. Enrichment had no effect on C. sonorensis survival, though a slight (~ 5 day) delay in emergence was observed, and there was no significant effect of pool size on 13C or 15N enrichment levels. CONCLUSIONS: Stable isotope labeling is life-long, and does not interfere with natural insect behaviors. Stable isotope enrichment using 13C or 15N shows promise for Culicoides dispersal studies in the field. This method can be used to identify adult dispersal from larval source habitat where a midge developed. It may be possible to detect a single enriched midge in a pool of unenriched individuals, though further testing is needed to confirm the sensitivity of this method.


Subject(s)
Animal Distribution , Ceratopogonidae/physiology , Insect Vectors/physiology , Isotope Labeling , Animals , Carbon Isotopes , Ecosystem , Larva , Nitrogen Isotopes
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