Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Inferring combined CNV/SNP haplotypes from genotype data

View through CrossRef
Abstract Motivation: Copy number variations (CNVs) are increasingly recognized as an substantial source of individual genetic variation, and hence there is a growing interest in investigating the evolutionary history of CNVs as well as their impact on complex disease susceptibility. CNV/SNP haplotypes are critical for this research, but although many methods have been proposed for inferring integer copy number, few have been designed for inferring CNV haplotypic phase and none of these are applicable at genome-wide scale. Here, we present a method for inferring missing CNV genotypes, predicting CNV allelic configuration and for inferring CNV haplotypic phase from SNP/CNV genotype data. Our method, implemented in the software polyHap v2.0, is based on a hidden Markov model, which models the joint haplotype structure between CNVs and SNPs. Thus, haplotypic phase of CNVs and SNPs are inferred simultaneously. A sampling algorithm is employed to obtain a measure of confidence/credibility of each estimate. Results: We generated diploid phase-known CNV–SNP genotype datasets by pairing male X chromosome CNV–SNP haplotypes. We show that polyHap provides accurate estimates of missing CNV genotypes, allelic configuration and CNV haplotypic phase on these datasets. We applied our method to a non-simulated dataset—a region on Chromosome 2 encompassing a short deletion. The results confirm that polyHap's accuracy extends to real-life datasets. Availability: Our method is implemented in version 2.0 of the polyHap software package and can be downloaded from http://www.imperial.ac.uk/medicine/people/l.coin Contact:  l.coin@imperial.ac.uk Supplementary information:  Supplementary data are available at Bioinformatics online.
Title: Inferring combined CNV/SNP haplotypes from genotype data
Description:
Abstract Motivation: Copy number variations (CNVs) are increasingly recognized as an substantial source of individual genetic variation, and hence there is a growing interest in investigating the evolutionary history of CNVs as well as their impact on complex disease susceptibility.
CNV/SNP haplotypes are critical for this research, but although many methods have been proposed for inferring integer copy number, few have been designed for inferring CNV haplotypic phase and none of these are applicable at genome-wide scale.
Here, we present a method for inferring missing CNV genotypes, predicting CNV allelic configuration and for inferring CNV haplotypic phase from SNP/CNV genotype data.
Our method, implemented in the software polyHap v2.
0, is based on a hidden Markov model, which models the joint haplotype structure between CNVs and SNPs.
Thus, haplotypic phase of CNVs and SNPs are inferred simultaneously.
A sampling algorithm is employed to obtain a measure of confidence/credibility of each estimate.
Results: We generated diploid phase-known CNV–SNP genotype datasets by pairing male X chromosome CNV–SNP haplotypes.
We show that polyHap provides accurate estimates of missing CNV genotypes, allelic configuration and CNV haplotypic phase on these datasets.
We applied our method to a non-simulated dataset—a region on Chromosome 2 encompassing a short deletion.
The results confirm that polyHap's accuracy extends to real-life datasets.
Availability: Our method is implemented in version 2.
0 of the polyHap software package and can be downloaded from http://www.
imperial.
ac.
uk/medicine/people/l.
coin Contact:  l.
coin@imperial.
ac.
uk Supplementary information:  Supplementary data are available at Bioinformatics online.

Related Results

The Impact of IL28B Gene Polymorphisms on Drug Responses
The Impact of IL28B Gene Polymorphisms on Drug Responses
To achieve high therapeutic efficacy in the patient, information on pharmacokinetics, pharmacodynamics, and pharmacogenetics is required. With the development of science and techno...
T-CNV: a robust tool for detecting and visualizing copy number variants in targeted sequencing data.
T-CNV: a robust tool for detecting and visualizing copy number variants in targeted sequencing data.
Abstract Background Copy number variants (CNVs) are widespread among human genes, causing Mendelian or sporadic traits, or associating with complex diseases. Several tools ...
Involvement of innate immunity in the course of choroidal neovascularization in mice
Involvement of innate immunity in the course of choroidal neovascularization in mice
AbstractPurposeTo investigate the effect of retinal microglia depletion, and the effect of systemic lipopolysaccharide (LPS) exposure, in the course of laser‐induced choroidal neov...
Abstract 6580: Impact of copy number variations on EV-miRNA profiles in ovarian cancer
Abstract 6580: Impact of copy number variations on EV-miRNA profiles in ovarian cancer
Abstract [Objective] Ovarian cancer has poor prognosis due to its late diagnosis and the development of drug resistance, particularly in advanced stages. High-grade ...
Multimodal imaging of laser-induced choroidal neovascularization in pigmented rabbits
Multimodal imaging of laser-induced choroidal neovascularization in pigmented rabbits
AbstractThis study aimed to demonstrate longitudinal multimodal imaging of laser photocoagulation-induced choroidal neovascularization (CNV) in pigmented rabbits. Six Dutch Belted ...
Expression and polymorphism of genes in gallstones
Expression and polymorphism of genes in gallstones
ABSTRACT Through the method of clinical case control study, to explore the expression and genetic polymorphism of KLF14 gene (rs4731702 and rs972283) and SR-B1 gene...
Silhouette scores for assessment of SNP genotype clusters
Silhouette scores for assessment of SNP genotype clusters
Abstract Background High-throughput genotyping of single nucleotide polymorphisms (SNPs) generates large amounts of data. In many SN...

Back to Top