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The genetic architecture of odor-guided behavior in Drosophila melanogaster.

机译:果蝇的气味引导行为的遗传结构。

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摘要

The avoidance response to repellent odorants in Drosophila melanogaster, a response essential for survival, provides an advantageous model for studies on the genetic architecture of behavior. Transposon tagging in a highly inbred strain of flies in combination with a rapid and simple statistical behavioral assay enables the identification of not only large phenotypic effects, but also small aberrations from wild-type avoidance behavior. The recent completion of the sequence of the Drosophila genome facilitates the molecular characterization of transposon-tagged genes and correlation between gene expression and behavior in smell-impaired (smi) mutant lines. Quantitative genetic analyses of a collection of smi lines in a coisogenic background revealed an extensive network of epistatic interactions among genes that shape the olfactory avoidance response. The identification and functional characterization of proteins encoded by smi genes that form part of the olfactory subgenome and correlation of polymorphisms in these genes with variation in odor-guided behavior in natural populations will advance our understanding of the genetic architecture of chemosensory behavior.
机译:果蝇中对驱避性气味的回避反应是生存必不可少的反应,为研究行为的遗传结构提供了有利的模型。在高度近交系蝇中进行转座子标记,并结合快速简单的统计行为分析,不仅可以识别大的表型效应,还可以识别野生型回避行为的小畸变。果蝇基因组序列的最新完成促进了转座子标记基因的分子表征以及气味减弱的(smi)突变株系中基因表达与行为之间的相关性。对在同基因背景中的一系列smi系进行定量遗传分析,发现形成嗅觉回避反应的基因之间存在广泛的上位相互作用网络。构成嗅觉亚基因组一部分的smi基因编码的蛋白质的鉴定和功能表征,以及这些基因中多态性与自然种群中气味引导行为的变化之间的相关性,将增进我们对化学感应行为遗传结构的了解。

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