Literature DB >> 16624924

On locating multiple interacting quantitative trait loci in intercross designs.

Andreas Baierl1, Małgorzata Bogdan, Florian Frommlet, Andreas Futschik.   

Abstract

A modified version (mBIC) of the Bayesian Information Criterion (BIC) has been previously proposed for backcross designs to locate multiple interacting quantitative trait loci. In this article, we extend the method to intercross designs. We also propose two modifications of the mBIC. First we investigate a two-stage procedure in the spirit of empirical Bayes methods involving an adaptive (i.e., data-based) choice of the penalty. The purpose of the second modification is to increase the power of detecting epistasis effects at loci where main effects have already been detected. We investigate the proposed methods by computer simulations under a wide range of realistic genetic models, with nonequidistant marker spacings and missing data. In the case of large intermarker distances we use imputations according to Haley and Knott regression to reduce the distance between searched positions to not more than 10 cM. Haley and Knott regression is also used to handle missing data. The simulation study as well as real data analyses demonstrates good properties of the proposed method of QTL detection.

Mesh:

Substances:

Year:  2006        PMID: 16624924      PMCID: PMC1526676          DOI: 10.1534/genetics.105.048108

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  29 in total

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  23 in total

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Review 6.  Advances in Bayesian multiple quantitative trait loci mapping in experimental crosses.

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7.  Locating multiple interacting quantitative trait Loci using rank-based model selection.

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9.  An efficient Bayesian model selection approach for interacting quantitative trait loci models with many effects.

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10.  A model selection approach for the identification of quantitative trait loci in experimental crosses, allowing epistasis.

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