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PMID: 12385992 Published · ppublish English Evaluation Study Journal Article Research Support, Non-U.S. Gov't

A similarity-based method for genome-wide prediction of disease-relevant human genes.

Bioinformatics (Oxford, England) ·Vol. 18 Suppl 2 ·2002-00-00 ·Pages S110-5

Freudenberg J, Propping P

Abstract

A method for prediction of disease relevant human genes from the phenotypic appearance of a query disease is presented. Diseases of known genetic origin are clustered according to their phenotypic similarity. Each cluster entry consists of a disease and its underlying disease gene. Potential disease genes from the human genome are scored by their functional similarity to known disease genes in these clusters, which are phenotypically similar to the query disease. For assessment of the approach, a leave-one-out cross-validation of 878 diseases from the OMIM database, using 10672 candidate genes from the human genome, is performed. Depending on the applied parameters, in roughly one-third of cases the true solution is contained within the top scoring 3% of predictions and in two-third of cases the true solution is contained within the top scoring 15% of predictions. The prediction results can either be used to identify target genes, when searching for a mutation in monogenic diseases or for selection of loci in genotyping experiments in genetically complex diseases.

MeSH Terms
Algorithms Chromosome Mapping/methods DNA Mutational Analysis/methods Databases, Genetic Diagnosis, Computer-Assisted/methods Gene Expression Profiling/methods Genetic Diseases, Inborn/diagnosis,genetics Genetic Predisposition to Disease/genetics Genetic Testing/methods Genome, Human Humans Phenotype
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Freudenberg J
Institute of Human Genetics, Bonn University Hospital, Germany. jan.freudenberg@uni-bonn.de
Propping P
Article Info
Journal
Bioinformatics (Oxford, England)
Abbr.
Bioinformatics
ISSN
1367-4803
Published
2002-00-00
Pages
S110-5
Language
English
Region
England
NLM ID
9808944
Subset
IM
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