Abstract
Mosquito-borne diseases are a permanent public health threat. The main way to protect populations against infectious bites relies on the use of insecticides, but their efficacy is threatened by the spread of resistance mechanisms among vector populations. In this context, repellents are a promising tool for reducing both mosquito nuisance and infection risk. Among them, DEET (N, N-diéthyl-3-méthylbenzamide) has proven great efficacy both in laboratory and field experiments. Despite this, repellents, are still used from an empirical way and their mode of action remains poorly understood. The aim of the present project was to: i) participate to the evaluation of the potential of integration of the DEET repellent in mosquito control, ii) measure the impact of mosquito physiological parameters of epidemiological relevance such as experience, age and infection, on the efficacy of repellents and insecticides, and iii) quantify the impact of repellents and insecticides on mosquito life-history traits. Experiments were performed on Anopheles gambiae and Aedes albopictus, vectors of the malaria parasite and of arboviruses such as dengue, respectively. Our results allowed to demonstrate that mosquito physiological state influences the efficacy of control tools; first, after successfully obtaining a blood meal in contact with permethrin, mosquitoes carrying kdr mutation are no longer inhibited by this compound at the subsequent exposure, at the recommended dose for net impregnation and under our experimental design. On the contrary, a first blood meal obtained in presence of DEET does not affect its efficacy at the following exposure. Then, DEET appeared to be more efficient against old mosquitoes that against younger ones, and results are consistent in the two species, independently of the insecticide resistance status. Besides, efficacy of DEET and deltamethrin is not modified when mosquitoes are infected with Plasmodium falciparum. However, an increased mortality was observed in anopheles when infected with transmissible stages (i.e. sporozoites), independently of chemical exposure, which suggest a cost of infection and seems to be “replicate-dependent”. Finally, DEET produces a long-term impact on mosquito fecundity and fertility, which is not observed with permethrin under our protocol. These results give insights to redefine the priorities in mosquito control programs, in order to specifically targeting mosquitoes that are the most susceptible to transmit pathogens. These observations also underline the need for considering both mosquito physiological state and the long-term impact of repellents and insecticides during the evaluation of control tools.