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1.
Insect Mol Biol ; 28(5): 591-604, 2019 10.
Article in English | MEDLINE | ID: mdl-30758862

ABSTRACT

Aedes aegypti is the major vector of a number of arboviruses that cause disease in humans. Without vaccines or pharmaceuticals, pyrethroid insecticides remain the major tool for public health protection. Pyrethroid resistance is now widespread. Replacement substitutions in the voltage-gated sodium channel (vgsc) that reduce the stability of pyrethroid binding account for most of the resistance, but metabolic mechanisms also inactivate pyrethroids. High-throughput sequencing and the A. aegypti L5 annotated physical map has allowed interrogation of the exome for genes and single-nucleotide polymorphisms associated with pyrethroid resistance. We exposed females of A. aegypti from Mexico to a deltamethrin discriminating dose to designate them as resistant (active after 1 h) or susceptible (knocked down with no recovery after 4 h). The vgsc on chromosome 3 had the highest association, followed by genes proximal to vgsc. We identified potential detoxification genes located singly (eg HPX8C) or within clusters in chromosome 2 [three esterase clusters, two of cytochrome P450 monooxygenases (CYP)] and chromosome 3 (one cluster of 16 CYP325 and seven CYP9 genes). Deltamethrin resistance in A. aegypti is associated with mutations in the vgsc gene and a large assortment of genes.


Subject(s)
Aedes/genetics , Insecticide Resistance/genetics , Nitriles/pharmacology , Pyrethrins/pharmacology , Aedes/drug effects , Aedes/metabolism , Animals , Cytochrome P-450 Enzyme System/genetics , Exome , Female , Inactivation, Metabolic/genetics , Insecticides/pharmacology , Mexico , Polymorphism, Single Nucleotide , Voltage-Gated Sodium Channels/genetics , Voltage-Gated Sodium Channels/metabolism
2.
Insect Mol Biol ; 23(2): 199-215, 2014 Apr.
Article in English | MEDLINE | ID: mdl-24299217

ABSTRACT

The mosquito Aedes aegypti is the main vector of Dengue and Yellow Fever flaviviruses. The organophosphate insecticide temephos is a larvicide that is used globally to control Ae. aegypti populations; many of which have in turn evolved resistance. Target site alteration in the acetylcholine esterase of this species has not being identified. Instead, we tracked changes in transcription of metabolic detoxification genes using the Ae. aegypti 'Detox Chip' microarray during five generations of temephos selection. We selected for temephos resistance in three replicates in each of six collections, five from Mexico, and one from Peru. The response to selection was tracked in terms of lethal concentrations. Uniform upregulation was seen in the epsilon class glutathione-S-transferase (eGST) genes in strains from Mexico prior to laboratory selection, while eGSTs in the Iquitos Peru strain became upregulated after five generations of temephos selection. While expression of many carboxyl/cholinesterase esterase (CCE) genes increased with selection, no single esterase was consistently upregulated and this same pattern was noted in the cytochrome P450 monooxygenase (CYP) genes and in other genes involved in reduction or oxidation of xenobiotics. Bioassays using glutathione-S-transferase (GST), CCE and CYP inhibitors suggest that various CCEs instead of GSTs are the main metabolic mechanism conferring resistance to temephos. We show that temephos-selected strains show no cross resistance to permethrin and that genes associated with temephos selection are largely independent of those selected with permethrin in a previous study.


Subject(s)
Aedes/genetics , Insecticide Resistance , Insecticides/pharmacology , Selection, Genetic , Temefos/pharmacology , Aedes/drug effects , Aedes/growth & development , Aedes/metabolism , Animals , Gene Expression Profiling , Larva/drug effects , Larva/genetics , Larva/metabolism , Mexico , Oligonucleotide Array Sequence Analysis , Peru , Real-Time Polymerase Chain Reaction , Transcription, Genetic
3.
Med Vet Entomol ; 27(3): 284-97, 2013 Sep.
Article in English | MEDLINE | ID: mdl-23077986

ABSTRACT

Aedes aegypti L. (Stegomyia aegypti) (Diptera: Culicidae) is the principal vector of dengue and yellow fever viruses in tropical and subtropical regions of the world. Disease management is largely based on mosquito control achieved by insecticides applied to interior resting surfaces and through space sprays. Population monitoring to detect insecticide resistance is a significant component of integrated disease management programmes. We developed a bioassay method for assessing insecticide susceptibility based on the feeding activity of mosquitoes on plant sugars. Our prototype sugar-insecticide feeding bioassay system was composed of inexpensive, disposable components, contained minimal volumes of insecticide, and was compact and highly transportable. Individual mosquitoes were assayed in a plastic cup that contained a sucrose-permethrin solution. Trypan blue dye was added to create a visual marker in the mosquito's abdomen for ingested sucrose-permethrin solution. Blue faecal spots provided further evidence of solution ingestion. With the sugar-insecticide feeding bioassay, the permethrin susceptibility of Ae. aegypti females from two field-collected strains was characterized by probit analysis of dosage-response data. The field strains were also tested by forced contact of females with permethrin residues on filter paper. Dosage-response patterns were similar, indicating that the sugar-insecticide feeding bioassay had appropriately characterized the permethrin susceptibility of the two strains.


Subject(s)
Aedes/drug effects , Biological Assay/methods , Carbohydrate Metabolism , Insecticide Resistance , Insecticides/pharmacology , Permethrin/pharmacology , Aedes/physiology , Animals , Biological Assay/instrumentation , Carbohydrates , Feeding Behavior/drug effects , Female , Mosquito Control
4.
J Med Entomol ; 49(2): 356-63, 2012 Mar.
Article in English | MEDLINE | ID: mdl-22493855

ABSTRACT

Seven different strains of Aedes aegypti (L.), including a genetically diverse laboratory strain, three laboratory-selected permethrin-resistant strains, a standard reference strain, and two recently colonized strains were fed on human blood containing various concentrations of ivermectin. Ivermectin reduced adult survival, fecundity, and hatch rate of eggs laid by ivermectin-treated adults in all seven strains. The LC50 of ivermectin for adults and the concentration that prevented 50% of eggs from hatching was calculated for all strains. Considerable variation in adult survival after an ivermectin-bloodmeal occurred among strains, and all three permethrin-resistant strains were significantly less susceptible to ivermectin than the standard reference strain. The hatch rate after an ivermectin bloodmeal was less variable among strains, and only one of the permethrin-resistant strains differed significantly from the standard reference strain. Our studies suggest that ivermectin induces adult mortality and decreases the hatch rate of eggs through different mechanisms. A correlation analysis of log-transformed LC50 among strains suggests that permethrin and ivermectin cross-resistance may occur.


Subject(s)
Aedes/drug effects , Insecticides/administration & dosage , Ivermectin/administration & dosage , Permethrin/administration & dosage , Aedes/genetics , Animals , Female , Genetic Variation , Humans , Insecticide Resistance , Lethal Dose 50 , Oviparity/drug effects , Ovum/drug effects , Species Specificity
5.
Insect Mol Biol ; 21(1): 61-77, 2012 Feb.
Article in English | MEDLINE | ID: mdl-22032702

ABSTRACT

Changes in gene expression before, during and after five generations of permethrin laboratory selection were monitored in six strains of Aedes aegypti: five F(2)-F(3) collections from the Yucatán Peninsula of Mexico and one F(2) from Iquitos, Peru. Three biological replicate lines were generated for each strain. The response to selection was measured as changes in the lethal and knockdown permethrin concentrations (LC(50), KC(50)) and in the frequency of the Ile1,016 substitution in the voltage-gated sodium channel (para) gene. Changes in expression of 290 metabolic detoxification genes were measured using the 'Aedes Detox' microarray. Selection simultaneously increased the LC(50), KC(50) and Ile1,016 frequency. There was an inverse relationship between Ile1,016 frequency and the numbers of differentially transcribed genes. The Iquitos strain lacked the Ile1,016 allele and 51 genes were differentially transcribed after selection as compared with 10-18 genes in the Mexican strains. Very few of the same genes were differentially transcribed among field strains but 10 cytochrome P(450) genes were upregulated in more than one strain. Laboratory adaptation to permethrin in Ae. aegypti is genetically complex and largely conditioned by geographic origin and pre-existing target site insensitivity in the para gene. The lack of uniformity in the genes that responded to artificial selection as well as differences in the direction of their responses challenges the assumption that one or a few genes control permethrin metabolic resistance. Attempts to identify one or a few metabolic genes that are predictably associated with permethrin adaptation may be futile.


Subject(s)
Aedes/metabolism , Insecticides , Permethrin , Selection, Genetic , Aedes/genetics , Animals , Female , Gene Expression Profiling , Inactivation, Metabolic/genetics , Insecticide Resistance/genetics , Male , Oligonucleotide Array Sequence Analysis , Transcription, Genetic
6.
Insect Mol Biol ; 16(6): 785-98, 2007 Dec.
Article in English | MEDLINE | ID: mdl-18093007

ABSTRACT

Pyrethroids are commonly used as mosquito adulticides and evolution of resistance to these compounds is a major threat to public health. 'Knockdown resistance' to pyrethroids (kdr) is frequently caused by nonsynonymous mutations in the voltage-gated sodium channel transmembrane protein (para) that reduce pyrethroid binding. Early detection of kdr is critical to the development of resistance management strategies in mosquitoes including Aedes aegypti, the most prevalent vector of dengue and yellow fever viruses. Brengues et al. described seven novel mutations in hydrophobic segment 6 of domain II of para in Ae. aegypti. Assays on larvae from strains bearing these mutations indicated reduced nerve sensitivity to permethrin inhibition. Two of these occurred in codons Iso1011 and Val1016 in exons 20 and 21 respectively. A transition in the third position of Iso1011 encoded a Met1011 replacement and a transversion in the second position of Val1016 encoded a Gly1016 replacement. We have screened this same region in 1318 mosquitoes in 32 additional strains; 30 from throughout Latin America. While the Gly1016 allele was never detected in Latin America, we found two new mutations in these same codons. A transition in the first position of codon 1011 encodes a Val replacement while a transition in the first position of codon 1016 encodes an Iso replacement. We developed PCR assays for these four mutations that can be read either on an agarose gel or as a melting curve. Selection experiments, one with deltamethrin on a field strain from Santiago de Cuba and another with permethrin on a strain from Isla Mujeres, Mexico rapidly increased the frequency of the Iso1016 allele. Bioassays of F(3) offspring arising from permethrin susceptible Val1016 homozygous parents and permethrin resistant Iso1016 homozygous parents show that Iso1016 segregates as a recessive allele in conferring kdr. Analysis of segregation between alleles at the 1011 and 1016 codons in the F(3) showed a high rate of recombination even though the two codons are only separated by a ~250 bp intron. The tools and information presented provide a means for early detection and characterization of kdr that is critical to the development of strategies for resistance management.


Subject(s)
Aedes/drug effects , Aedes/genetics , Insect Proteins/genetics , Point Mutation , Sodium Channels/genetics , Alleles , Amino Acid Sequence , Amino Acid Substitution , Animals , Base Sequence , Crosses, Genetic , DNA Primers/genetics , Female , Gene Frequency , Genes, Insect , Genotype , Insecticide Resistance/genetics , Insecticides/pharmacology , Latin America , Male , Molecular Sequence Data , Phylogeny , Polymerase Chain Reaction , Pyrethrins/pharmacology , Sequence Homology, Nucleic Acid
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