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PMID: 9748698 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Multi-locus nonparametric linkage analysis of complex trait loci with neural networks.

Human heredity ·Vol. 48 ·No. 5 ·1998-00-00 ·Pages 275-84

Lucek P, Hanke J, Reich J, Solla SA, Ott J

Abstract

Complex traits are generally taken to be under the influence of multiple genes, which may interact with each other to confer susceptibility to disease. Statistical methods in current use for localizing such genes essentially work under single-gene models, either implicitly or explicitly. In genomic screens for complex disease genes, some of the marker loci must be in tight linkage with disease susceptibility genes. We developed a general multi-locus approach to identify sets of such marker loci. Our approach focuses on affected sib pair data and employs a nonparametric pattern recognition technique using artificial neural networks. This technique analyzes all markers simultaneously in order to detect patterns of locus interactions. When applied to previously published sib pair data on type I diabetes, our approach finds the same genes as in the published report in addition to some new loci. For a specific two-locus model of inheritance, the power of our approach is higher than that of the currently used analysis standard.

MeSH Terms
Chromosome Mapping Diabetes Mellitus, Type 1/genetics Genetic Linkage Genetic Predisposition to Disease Humans Neural Networks, Computer
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Lucek P
Department of Genetics and Development, Columbia University, New York, N.Y., USA.
Hanke J
Reich J
Solla S A
Ott J
Article Info
Journal
Human heredity
Abbr.
Hum Hered
ISSN
0001-5652
Published
1998-00-00
Pages
275-84
Language
English
Region
Switzerland
NLM ID
0200525
Subset
IM
Grants
NIADDK NIH HHS · 5T32AM07367 · United States
NIMH NIH HHS · MH 44292 · United States
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