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March 1, 2006Journal of Medical Entomology298 citationsOpen Access

Effects of Temperature on the Transmission of West Nile Virus by Culex tarsalis (Diptera: Culicidae)

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WRWilliam K. ReisenYFYīng FāngVMVincent Martinez

Key Points

  • To evaluate the impact of temperature on the extrinsic incubation period and transmission efficiency of West Nile virus in Culex tarsalis mosquitoes.
  • Infected female Culex tarsalis mosquitoes with the NY99 strain of West Nile virus and incubated them at constant temperatures ranging from 10°C to 30°C.
  • Measured transmission at set intervals using in vitro capillary tube assays and modeled the median extrinsic incubation period (EIP50) using probit analysis and linear degree-day regression.
  • Integrated degree-day thermal thresholds with regional temperature data from California in 2004 and historical US epidemic records from 2002–2004 to evaluate transmission cycles.
  • Virus development required an estimated 109 degree-days, with the thermal threshold for zero viral replication calculated at 14.3°C.
  • Elevated temperatures substantially shortened the extrinsic incubation period, allowing viral transmission to occur within two or fewer mosquito gonotrophic cycles.
  • Regional and national surveillance showed that viral amplification and epidemic epicenters consistently aligned with periods of above-average summer heat.

Abstract

Abstract Culex tarsalis Coquillett females were infected with the NY99 strain of West Nile virus (family Flaviviridae, genus Flavivirus, WNV) and then incubated under constant temperatures of 10–30°C. At selected time intervals, transmission was attempted using an in vitro capillary tube assay. The median time from imbibing an infectious bloodmeal until infected females transmitted WNV (median extrinsic incubation period, EIP50) was estimated by probit analysis. By regressing the EIP rate (inverse of EIP50) as a function of temperature from 14 to 30°C, the EIP was estimated to require 109 degree-days (DD) and the point of zero virus development (x-intercept) was estimated to be 14.3°C. The resulting degree-day model showed that the NY99 WNV strain responded to temperature differently than a lineage II strain of WNV from South Africa and approximated our previous estimates for St. Louis encephalitis virus (family Flaviviridae, genus Flavivirus, SLEV). The invading NY99 WNV strain therefore required warm temperatures for efficient transmission. The time for completion of the EIP was estimated monthly from temperatures recorded at Coachella Valley, Los Angeles, and Kern County, California, during the 2004 epidemic year and related to the duration of the Cx. tarsalis gonotrophic cycle and measures of WNV activity. Enzootic WNV activity commenced after temperatures increased, the duration of the EIP decreased, and virus potentially was transmitted in two or less gonotrophic cycles. Temperatures in the United States during the epidemic summers of 2002–2004 indicated that WNV dispersal and resulting epicenters were linked closely to above-average summer temperatures.

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Cite This Study

Reisen et al. (2006) studied this question.

synapsesocial.com/papers/69d821d4f4e559c61eae2a03https://doi.org/10.1093/jmedent/43.2.309
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