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bioRxiv · 10.1101/2021.12.21.473628

dynamAedes: a unified modelling framework for invasive Aedes mosquitoes

Abstract

O_LIMosquito species belonging to the genus Aedes have attracted the interest of scientists and public health officers for their invasive species traits and efficient capacity of transmitting viruses affecting humans. Some of these species were brought outside their native range by human activities such as trade and tourism, and colonised new regions thanks to a unique combination of eco-physiological traits. C_LIO_LIConsidering mosquito physiological and behavioural traits to understand and predict the spatial and temporal population dynamics is thus a crucial step to develop strategies to mitigate the local densities of invasive Aedes populations. C_LIO_LIHere, we synthesised the life cycle of four invasive Aedes species (Ae. aegypti, Ae. albopictus, Ae. japonicus and Ae. koreicus) in a single multi-scale stochastic modelling framework which we coded in the R package dynamAedes. We designed a stage-based and time-discrete stochastic model driven by temperature, photo-period and inter-specific larval competition that can be applied to three different spatial scales: punctual, local and regional. These spatial scales consider different degrees of spatial complexity and data availability, by accounting for both active and passive dispersal of mosquito species as well as for the heterogeneity of the input temperature data. C_LIO_LIOur overarching aim was to provide a flexible, open-source and user-friendly tool rooted in the most updated knowledge on species biology which could be applied to the management of invasive Aedes populations as well as for more theoretical ecological inquiries. C_LI

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BibTeXRIS

Da Re, D., Van Bortel, W., Reuss, F., Muller, R., Boyer, S., Montarsi, F., Ciocchetta, S., Arnoldi, D., Marini, G., Rizzoli, A., L' Ambert, G., Lacour, G., Koenraadt, C. J. M., Vanwambeke, S. O., Marcantonio, M.. 2021-12-22. dynamAedes: a unified modelling framework for invasive Aedes mosquitoes. https://doi.org/10.1101/2021.12.21.473628

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