The genetic architecture of odor-guided behavior in Drosophila: epistasis and the transcriptome

被引:0
|
作者
Robert R H Anholt
Christy L Dilda
Sherman Chang
Juan-José Fanara
Nalini H Kulkarni
Indrani Ganguly
Stephanie M Rollmann
Kim P Kamdar
Trudy F C Mackay
机构
[1] North Carolina State University,The Department of Zoology
[2] North Carolina State University,The Department of Genetics
[3] The W. M. Keck Center for Behavioral Biology,Department of Ecology
[4] North Carolina State University,undefined
[5] The Torrey Mesa Research Institute,undefined
[6] Genetics and Evolution,undefined
[7] University of Buenos Aires,undefined
来源
Nature Genetics | 2003年 / 35卷
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摘要
We combined transcriptional profiling and quantitative genetic analysis to elucidate the genetic architecture of olfactory behavior in Drosophila melanogaster. We applied whole-genome expression analysis to five coisogenic smell-impaired (smi) mutant lines and their control. We used analysis of variance to partition variation in transcript abundance between males and females and between smi genotypes and to determine the genotype-by-sex interaction. A total of 666 genes showed sexual dimorphism in transcript abundance, and 530 genes were coregulated in response to one or more smi mutations, showing considerable epistasis at the level of the transcriptome in response to single mutations. Quantitative complementation tests of mutations at these coregulated genes with the smi mutations showed that in most cases (67%) epistatic interactions for olfactory behavior mirrored epistasis at the level of transcription, thus identifying new candidate genes regulating olfactory behavior.
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页码:180 / 184
页数:4
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