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Bouaka, C.

Publications and source records attributed to Bouaka, C..

3 recordsLinked to original sources

Behavioral divergence between a generalist and a specialist mosquito despite minimal differentiation across chemosensory receptor gene families

Oviposition site choice is a major determinant of habitat selection in insects, yet its behavioral and genetic bases remain poorly understood. Although model organisms such as Drosophila melanogaster provide well-established systems for studying oviposition, disentangling foraging from egg-laying decisions remains challenging because females use the same substrates for feeding and reproduction. Here, we identify a pair of sister mosquito species that exhibit contrasting oviposition strategies and provide a promising system for investigating how divergence in sensory information processing shapes behavioral shifts between generalist and specialist taxa. Using binary-choice assays, we tested oviposition preferences in 1,046 gravid females from both field and laboratory populations. Anopheles gambiae females were highly selective and deposited nearly all eggs in a single water source, consistent with specialist behavior. In contrast, females of its sibling species, An. coluzzii, adopted a generalist strategy marked by a more even distribution of eggs across available substrates. To identify chemosensory receptor genes that diverge between the cryptic species and may underlie these behavioral differences, we analyzed amino acid substitutions across odorant, ionotropic, and gustatory receptor families using whole-genome sequencing data. Although differentiation was limited at the gene-family level, several individual divergent loci associated with carboxylic acid, amine, and other volatile detection pathways emerged as candidate drivers of species-specific oviposition behavior. These findings suggest that shifts in sensory perception during egg laying may facilitate behavioral and ecological specialization, and that phenotypic divergence in environmental sensing can arise before substantial genome-wide differentiation.

evolutionary biology↗

Field-evolved resistance to neonicotinoids in the mosquito, Anopheles gambiae, is associated with downregulation and mutations of nicotinic acetylcholine receptor subunits combined with cytochrome P450-mediated detoxification

Neonicotinoid insecticides act selectively on their nicotinic receptor targets leading to variable sensitivity among arthropods. This study aimed to investigate the molecular mechanisms underlying contrasting susceptibility to neonicotinoids observed in wild populations of two mosquito sibling species. Bioassays and a synergism test revealed that the sister taxa, Anopheles gambiae and An. coluzzii, from Yaounde, Cameroon, rely on cytochrome P450s to detoxify neonicotinoids and develop resistance. However, contrary to An. coluzzii, An. gambiae populations are evolving stronger resistance to several active ingredients facilitated by mutations and reduced expression of nicotinic acetylcholine receptors. Six mutations were detected in coding sequences of the {beta}1 and 6 subunits, including two substitutions in one of the loops that modulate ligand binding and sensitivity. Allele frequencies were strongly correlated with a susceptibility gradient between An. coluzzii and An. gambiae suggesting that the mutations may play a key role in sensitivity. Messenger RNA expression levels of the {beta}1, 3, and 7 subunits decreased dramatically, on average by 23.27, 17.50, 15.80-fold, respectively, in wild An. gambiae populations compared to a susceptible insectary colony. By contrast, only the {beta}2 and 9-1 subunits were moderately downregulated (5.28 and 2.67-fold change, respectively) in field-collected An. coluzzii adults relative to susceptible colonized mosquitoes. Our findings provide critical information for the application and resistance management of neonicotinoids in malaria prevention.

molecular biology↗

Testing Anopheles larvae and adults using standard bioassays reveals susceptibility to chlorfenapyr (pyrrole) while highlighting variability between species

A standard test is available for assessing the susceptibility of adult Anopheles mosquitoes to chlorfenapyr, a new active ingredient in insecticide-treated nets. However, for a new insecticide with a unique mode of action, testing both larvae and adults using different routes of exposure is crucial to a comprehensive evaluation of susceptibility and to identifying potential selection pressures that may drive resistance. We followed WHO guidelines to assess the lethal toxicity of chlorfenapyr and monitor Anopheles susceptibility. Based on the median lethal concentration (LC50), larvae of the pyrethroid-susceptible colonized strain An. coluzzii Ngousso were 16-fold more susceptible to chlorfenapyr than immature stages of another susceptible colony: An. gambiae Kisumu. Larval bioassays indicated 99.63 {+/-} 0.2% mortality after 24 h at a discriminating concentration of 100 ng/ml in Anopheles gambiae and An. coluzzii larvae collected from seven locations in urban and rural areas of Yaounde, Cameroon. By contrast, exposing emerging female adults from these populations to the recommended discriminating concentration (100 {micro}g Active Ingredient (AI)/bottle) in bottle bioassays revealed variable mortality after 72 h, with values below the threshold of susceptibility (98%) in several tests. Anopheles coluzzii larvae and adults were fully susceptible, but mortality rates were slightly lower in An. gambiae adults compared to larvae (94 {+/-} 1.5% vs 100%, Fishers exact test, p < 0.001). Piperonyl butoxide antagonized the activity of chlorphenapyr in An. gambiae adults. 100 ng/ml provides sufficient discriminative power for assessing the susceptibility of An. gambiae and An. coluzzii larvae to chlorfenapyr. Testing An. gambiae adults with 100 {micro}g AI/bottle is likely to reveal inconsistent mortality values making it difficult to detect any emergence of resistance. Exploring different tests and accounting for variability between species are key to a reliable monitoring of Anopheles susceptibility to chlorfenapyr.

zoology↗