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1.
Science ; 330(6003): 512-4, 2010 Oct 22.
Article in English | MEDLINE | ID: mdl-20966253

ABSTRACT

The Afrotropical mosquito Anopheles gambiae sensu stricto, a major vector of malaria, is currently undergoing speciation into the M and S molecular forms. These forms have diverged in larval ecology and reproductive behavior through unknown genetic mechanisms, despite considerable levels of hybridization. Previous genome-wide scans using gene-based microarrays uncovered divergence between M and S that was largely confined to gene-poor pericentromeric regions, prompting a speciation-with-ongoing-gene-flow model that implicated only about 3% of the genome near centromeres in the speciation process. Here, based on the complete M and S genome sequences, we report widespread and heterogeneous genomic divergence inconsistent with appreciable levels of interform gene flow, suggesting a more advanced speciation process and greater challenges to identify genes critical to initiating that process.


Subject(s)
Anopheles/genetics , Genetic Speciation , Genome, Insect , Animals , Anopheles/classification , Evolution, Molecular , Female , Gene Flow , Male , Models, Genetic , Polymorphism, Single Nucleotide
2.
Science ; 330(6003): 514-517, 2010 Oct 22.
Article in English | MEDLINE | ID: mdl-20966254

ABSTRACT

Mosquitoes in the Anopheles gambiae complex show rapid ecological and behavioral diversification, traits that promote malaria transmission and complicate vector control efforts. A high-density, genome-wide mosquito SNP-genotyping array allowed mapping of genomic differentiation between populations and species that exhibit varying levels of reproductive isolation. Regions near centromeres or within polymorphic inversions exhibited the greatest genetic divergence, but divergence was also observed elsewhere in the genomes. Signals of natural selection within populations were overrepresented among genomic regions that are differentiated between populations, implying that differentiation is often driven by population-specific selective events. Complex genomic differentiation among speciating vector mosquito populations implies that tools for genome-wide monitoring of population structure will prove useful for the advancement of malaria eradication.


Subject(s)
Anopheles/genetics , Gene Flow , Genes, Insect , Insect Vectors/genetics , Polymorphism, Single Nucleotide/genetics , Animals , Female , Genotype , Malaria
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