Abstract
Identifying complex-trait candidate genes after initial low-resolution mapping has proven to be a difficult and labor-intensive undertaking, usually requiring years to develop and analyze congenic strains. As a result, to date, few complex-trait genes have been discovered. Recently it was suggested that SNP haplotype analysis in inbred strains might be useful for mapping of complex traits. In this study, we have combined medium-resolution haplotype mapping with multiple experimental cross-mapping experiments to reduce the number of potential candidate genes in a complex-trait candidate interval. Coincident mapping of a modifier gene in multiple experimental crosses using different inbred strains is consistent with the common inheritance of a modifier allele. A haplotype map was developed in four inbred strains of mice used in our complex-trait mapping crosses across the proximal 10 cM of proximal Chromosome 19 to identify haplotype blocks that segregate appropriately. Only ~23 out of >400 genes met this criteria. This strategy coupled with tissue and expression arrays, as well as our recently described common pathway analysis to reduce the number of high-priority candidates, may provide a rapid, efficient method to identify and prioritize complex-trait candidate genes without requiring construction of congenic mouse strains.
MeSH Terms
Animals
Chromosome Mapping/methods
Crosses, Genetic
Genes/genetics
Haplotypes/genetics
Mice
Mice, Inbred AKR
Mice, Inbred C57BL
Mice, Inbred DBA
Mice, Inbred NZB
Mice, Inbred Strains
Quantitative Trait Loci/genetics
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Park Yeong-Gwon
Laboratory of Population Genetics, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland 20892, USA.
Clifford Robert
Buetow Kenneth H
Hunter Kent W
References (13)
13 references, click to expand
-
Large-scale discovery and genotyping of single-nucleotide polymorphisms in the mouse.
Nat Genet. 2000 Apr;24(4):381-6
PMID: 10742102
-
Effect of genetic cross on the detection of quantitative trait loci and a novel approach to mapping QTLs.
Pharmacol Biochem Behav. 2000 Dec;67(4):767-72
PMID: 11166067
-
Epistatic interactions between skin tumor modifier loci in interspecific (spretus/musculus) backcross mice.
Cancer Res. 2001 Feb 15;61(4):1305-8
PMID: 11245425
-
In silico mapping of complex disease-related traits in mice.
Science. 2001 Jun 8;292(5523):1915-8
PMID: 11397946
-
QTL analysis and genomewide mutagenesis in mice: complementary genetic approaches to the dissection of complex traits.
Behav Genet. 2001 Jan;31(1):5-15
PMID: 11529275
-
Blocks of limited haplotype diversity revealed by high-resolution scanning of human chromosome 21.
Science. 2001 Nov 23;294(5547):1719-23
PMID: 11721056
-
Consed: a graphical tool for sequence finishing.
Genome Res. 1998 Mar;8(3):195-202
PMID: 9521923
-
In silico mapping of mouse quantitative trait loci.
Science. 2001 Dec 21;294(5551):2423
PMID: 11752534
-
In silico mapping of mouse quantitative trait loci.
Science. 2001 Dec 21;294(5551):2423
PMID: 11865449
-
Simultaneous detection and fine mapping of quantitative trait loci in mice using heterogeneous stocks.
Genetics. 2002 Apr;160(4):1609-18
PMID: 11973314
-
A bioinformatics-based strategy identifies c-Myc and Cdc25A as candidates for the Apmt mammary tumor latency modifiers.
Genome Res. 2002 Jun;12(6):969-75
PMID: 12045150
-
From QTL to gene: the harvest begins.
Nat Genet. 2002 Jul;31(3):235-6
PMID: 12089518
-
Predisposition to efficient mammary tumor metastatic progression is linked to the breast cancer metastasis suppressor gene Brms1.
Cancer Res. 2001 Dec 15;61(24):8866-72
PMID: 11751410