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PLoS Genetics 4 (10), e1000212 (2008)
Genetic linkage maps are cornerstones of a wide spectrum of biotechnology applications, including map-assisted breeding, association genetics, and map-assisted gene cloning. During the past several years, the adoption of high-throughput genotyping technologies has been paralleled by a substantial increase in the density and diversity of genetic markers. New genetic mapping algorithms are needed in order to efficiently process these large datasets and accurately construct high-density genetic maps. In this paper, we introduce a novel algorithm to order markers on a genetic linkage map. Our method is based on a simple yet fundamental mathematical property that we prove under rather general assumptions. The validity of this property allows one to determine efficiently the correct order of markers by computing the minimum spanning tree of an associated graph. Our empirical studies obtained on genotyping data for three mapping populations of barley (Hordeum vulgare), as well as extensive simulations on synthetic data, show that our algorithm consistently outperforms the best available methods in the literature, particularly when the input data are noisy or incomplete. The software implementing our algorithm is available in the public domain as a web tool under the name MSTMAP.
Nature genetics. 38 (8), 904-9 (Aug 2006)
Journal club Sept 2008
Genetic epidemiology, (08 Jul 2008)
CANDID is a prioritization algorithm designed to produce impartial, accurate rankings of candidate genes that influence complex human traits.
Nature genetics, published online 16 Sep 2007
BMC Bioinformatics 9 (1), 290 (23 Jun 2008)
Linkage disequilibrium mdash understanding the evolutionary past and mapping the medical future
Nat Rev Genet 9 (6), 477-85 (Jun 2008)
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