Integration of genome‐wide association and extant brain expression QTL identifies candidate genes influencing prepulse inhibition in inbred F1 mice

生物 遗传学 数量性状位点 表达数量性状基因座 单核苷酸多态性 近交系 基因座(遗传学) 基因 遗传关联 候选基因 全基因组关联研究 基因型 计算生物学
作者
Laura J. Sittig,Peter Carbonetto,Kyle A. Engel,Kathleen S. Krauss,Abraham A. Palmer
出处
期刊:Genes, Brain and Behavior [Wiley]
卷期号:15 (2): 260-270 被引量:6
标识
DOI:10.1111/gbb.12262
摘要

Genetic association mapping in structured populations of model organisms can offer a fruitful complement to human genetic studies by generating new biological hypotheses about complex traits. Here we investigated prepulse inhibition (PPI), a measure of sensorimotor gating that is disrupted in a number of psychiatric disorders. To identify genes that influence PPI, we constructed a panel of half-sibs by crossing 30 females from common inbred mouse strains with inbred C57BL/6J males to create male and female F1 offspring. We used publicly available single nucleotide polymorphism (SNP) genotype data from these inbred strains to perform a genome-wide association scan using a dense panel of over 150,000 SNPs in a combined sample of 604 mice representing 30 distinct F1 genotypes. We identified two independent PPI-associated loci on Chromosomes 2 and 7, each of which explained 12-14% of the variance in PPI. Searches of available databases did not identify any plausible causative coding polymorphisms within these loci. However, previously collected expression quantitative trait locus (eQTL) data from hippocampus and striatum indicated that the SNPs on Chromosomes 2 and 7 that showed the strongest association with PPI were also strongly associated with expression of several transcripts, some of which have been implicated in human psychiatric disorders. This integrative approach successfully identified a focused set of genes which can be prioritized for follow-up studies. More broadly, our results show that F1 crosses among common inbred strains can be used in combination with other informatics and expression datasets to identify candidate genes for complex behavioral traits.

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