A rapid molecular approach for chromosomal phasing.
Determining the chromosomal phase of pairs of sequence variants - the arrangement of specific alleles as haplotypes - is a routine challenge in molecular genetics. Here we describe Drop-Phase, a molecular method for quickly ascertaining the phase of pairs of DNA sequence variants (separated by 1-200...
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doaj-7b37bf289b1f43f0aa67cdad56127cdc2020-11-25T02:13:26ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01103e011827010.1371/journal.pone.0118270A rapid molecular approach for chromosomal phasing.John F ReganNolan KamitakiTina LeglerSamantha CooperNiels KlitgordGeorge Karlin-NeumannCatherine WongShawn HodgesRyan KoehlerSvilen TzonevSteven A McCarrollDetermining the chromosomal phase of pairs of sequence variants - the arrangement of specific alleles as haplotypes - is a routine challenge in molecular genetics. Here we describe Drop-Phase, a molecular method for quickly ascertaining the phase of pairs of DNA sequence variants (separated by 1-200 kb) without cloning or manual single-molecule dilution. In each Drop-Phase reaction, genomic DNA segments are isolated in tens of thousands of nanoliter-sized droplets together with allele-specific fluorescence probes, in a single reaction well. Physically linked alleles partition into the same droplets, revealing their chromosomal phase in the co-distribution of fluorophores across droplets. We demonstrated the accuracy of this method by phasing members of trios (revealing 100% concordance with inheritance information), and demonstrate a common clinical application by phasing CFTR alleles at genomic distances of 11-116 kb in the genomes of cystic fibrosis patients. Drop-Phase is rapid (requiring less than 4 hours), scalable (to hundreds of samples), and effective at long genomic distances (200 kb).http://europepmc.org/articles/PMC4349636?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
John F Regan Nolan Kamitaki Tina Legler Samantha Cooper Niels Klitgord George Karlin-Neumann Catherine Wong Shawn Hodges Ryan Koehler Svilen Tzonev Steven A McCarroll |
spellingShingle |
John F Regan Nolan Kamitaki Tina Legler Samantha Cooper Niels Klitgord George Karlin-Neumann Catherine Wong Shawn Hodges Ryan Koehler Svilen Tzonev Steven A McCarroll A rapid molecular approach for chromosomal phasing. PLoS ONE |
author_facet |
John F Regan Nolan Kamitaki Tina Legler Samantha Cooper Niels Klitgord George Karlin-Neumann Catherine Wong Shawn Hodges Ryan Koehler Svilen Tzonev Steven A McCarroll |
author_sort |
John F Regan |
title |
A rapid molecular approach for chromosomal phasing. |
title_short |
A rapid molecular approach for chromosomal phasing. |
title_full |
A rapid molecular approach for chromosomal phasing. |
title_fullStr |
A rapid molecular approach for chromosomal phasing. |
title_full_unstemmed |
A rapid molecular approach for chromosomal phasing. |
title_sort |
rapid molecular approach for chromosomal phasing. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2015-01-01 |
description |
Determining the chromosomal phase of pairs of sequence variants - the arrangement of specific alleles as haplotypes - is a routine challenge in molecular genetics. Here we describe Drop-Phase, a molecular method for quickly ascertaining the phase of pairs of DNA sequence variants (separated by 1-200 kb) without cloning or manual single-molecule dilution. In each Drop-Phase reaction, genomic DNA segments are isolated in tens of thousands of nanoliter-sized droplets together with allele-specific fluorescence probes, in a single reaction well. Physically linked alleles partition into the same droplets, revealing their chromosomal phase in the co-distribution of fluorophores across droplets. We demonstrated the accuracy of this method by phasing members of trios (revealing 100% concordance with inheritance information), and demonstrate a common clinical application by phasing CFTR alleles at genomic distances of 11-116 kb in the genomes of cystic fibrosis patients. Drop-Phase is rapid (requiring less than 4 hours), scalable (to hundreds of samples), and effective at long genomic distances (200 kb). |
url |
http://europepmc.org/articles/PMC4349636?pdf=render |
work_keys_str_mv |
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