Abstract
Linkage analysis with genetic markers has been successful in the localization of genes for many monogenic human diseases. In studies of complex diseases, however, tests that rely on linkage disequilibrium (the simultaneous presence of linkage and association) are often more powerful than those that rely on linkage alone. This advantage is illustrated by the transmission/disequilibrium test (TDT). The TDT requires data (marker genotypes) for affected individuals and their parents; for some diseases, however, data from parents may be difficult or impossible to obtain. In this article, we describe a method, called the "sib TDT" (or "S-TDT"), that overcomes this problem by use of marker data from unaffected sibs instead of from parents, thus allowing application of the principle of the TDT to sibships without parental data. In a single collection of families, there might be some that can be analyzed only by the TDT and others that are suitable for analysis by the S-TDT. We show how all the data may be used jointly in one overall TDT-type procedure that tests for linkage in the presence of association. These extensions of the TDT will be valuable for the study of diseases of late onset, such as non-insulin-dependent diabetes, cardiovascular diseases, and other diseases associated with aging.
MeSH Terms
Disease Susceptibility
Female
Genetic Carrier Screening
Genetic Diseases, Inborn/genetics
Genetic Linkage
Genomic Imprinting
Genotype
Humans
Linkage Disequilibrium
Male
Models, Genetic
Models, Statistical
Nuclear Family
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Spielman R S
Department of Genetics, University of Pennsylvania School of Medicine, Philadelphia, PA 19104-6018, USA.
Ewens W J
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