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Complex genetic architecture of Drosophila aggressive behavior.


ABSTRACT: Epistasis and pleiotropy feature prominently in the genetic architecture of quantitative traits but are difficult to assess in outbred populations. We performed a diallel cross among coisogenic Drosophila P-element mutations associated with hyperaggressive behavior and showed extensive epistatic and pleiotropic effects on aggression, brain morphology, and genome-wide transcript abundance in head tissues. Epistatic interactions were often of greater magnitude than homozygous effects, and the topology of epistatic networks varied among these phenotypes. The transcriptional signatures of homozygous and double heterozygous genotypes derived from the six mutations imply a large mutational target for aggressive behavior and point to evolutionarily conserved genetic mechanisms and neural signaling pathways affecting this universal fitness trait.

SUBMITTER: Zwarts L 

PROVIDER: S-EPMC3193212 | biostudies-literature | 2011 Oct

REPOSITORIES: biostudies-literature

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Complex genetic architecture of Drosophila aggressive behavior.

Zwarts Liesbeth L   Magwire Michael M MM   Carbone Mary Anna MA   Versteven Marijke M   Herteleer Liesbet L   Anholt Robert R H RR   Callaerts Patrick P   Mackay Trudy F C TF  

Proceedings of the National Academy of Sciences of the United States of America 20110926 41


Epistasis and pleiotropy feature prominently in the genetic architecture of quantitative traits but are difficult to assess in outbred populations. We performed a diallel cross among coisogenic Drosophila P-element mutations associated with hyperaggressive behavior and showed extensive epistatic and pleiotropic effects on aggression, brain morphology, and genome-wide transcript abundance in head tissues. Epistatic interactions were often of greater magnitude than homozygous effects, and the topo  ...[more]

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