TY - JOUR
T1 - Enhanced localization of genetic samples through linkage-disequilibrium correction
AU - Baran, Yael
AU - Quintela, Inés
AU - Carracedo, Ángel
AU - Pasaniuc, Bogdan
AU - Halperin, Eran
N1 - Funding Information:
Research reported in this publication was supported in part by the National Cancer Institute of the National Institutes of Health under award R03-CA162200 (B.P.). The research was also supported in part by German-Israeli Foundation grant 109433.2/2010 and by Israeli Science Foundation grant 04514831. E.H. is a faculty fellow of the Edmond J. Safra Center for Bioinformatics at Tel-Aviv University. Y.B. was supported in part by a fellowship from the Edmond J. Safra Center for Bioinformatics at Tel-Aviv University. E.H. was also partially supported by National Science Foundation grant III-1217615.
PY - 2013/6/6
Y1 - 2013/6/6
N2 - Characterizing the spatial patterns of genetic diversity in human populations has a wide range of applications, from detecting genetic mutations associated with disease to inferring human history. Current approaches, including the widely used principal-component analysis, are not suited for the analysis of linked markers, and local and long-range linkage disequilibrium (LD) can dramatically reduce the accuracy of spatial localization when unaccounted for. To overcome this, we have introduced an approach that performs spatial localization of individuals on the basis of their genetic data and explicitly models LD among markers by using a multivariate normal distribution. By leveraging external reference panels, we derive closed-form solutions to the optimization procedure to achieve a computationally efficient method that can handle large data sets. We validate the method on empirical data from a large sample of European individuals from the POPRES data set, as well as on a large sample of individuals of Spanish ancestry. First, we show that by modeling LD, we achieve accuracy superior to that of existing methods. Importantly, whereas other methods show decreased performance when dense marker panels are used in the inference, our approach improves in accuracy as more markers become available. Second, we show that accurate localization of genetic data can be achieved with only a part of the genome, and this could potentially enable the spatial localization of admixed samples that have a fraction of their genome originating from a given continent. Finally, we demonstrate that our approach is resistant to distortions resulting from long-range LD regions; such distortions can dramatically bias the results when unaccounted for.
AB - Characterizing the spatial patterns of genetic diversity in human populations has a wide range of applications, from detecting genetic mutations associated with disease to inferring human history. Current approaches, including the widely used principal-component analysis, are not suited for the analysis of linked markers, and local and long-range linkage disequilibrium (LD) can dramatically reduce the accuracy of spatial localization when unaccounted for. To overcome this, we have introduced an approach that performs spatial localization of individuals on the basis of their genetic data and explicitly models LD among markers by using a multivariate normal distribution. By leveraging external reference panels, we derive closed-form solutions to the optimization procedure to achieve a computationally efficient method that can handle large data sets. We validate the method on empirical data from a large sample of European individuals from the POPRES data set, as well as on a large sample of individuals of Spanish ancestry. First, we show that by modeling LD, we achieve accuracy superior to that of existing methods. Importantly, whereas other methods show decreased performance when dense marker panels are used in the inference, our approach improves in accuracy as more markers become available. Second, we show that accurate localization of genetic data can be achieved with only a part of the genome, and this could potentially enable the spatial localization of admixed samples that have a fraction of their genome originating from a given continent. Finally, we demonstrate that our approach is resistant to distortions resulting from long-range LD regions; such distortions can dramatically bias the results when unaccounted for.
UR - https://www.scopus.com/pages/publications/84878885949
U2 - 10.1016/j.ajhg.2013.04.023
DO - 10.1016/j.ajhg.2013.04.023
M3 - ???researchoutput.researchoutputtypes.contributiontojournal.article???
AN - SCOPUS:84878885949
SN - 0002-9297
VL - 92
SP - 882
EP - 894
JO - American Journal of Human Genetics
JF - American Journal of Human Genetics
IS - 6
ER -