Self-digitization chip for single-cell genotyping of cancer-related mutations.

Cancer is a heterogeneous disease, and patient-level genetic assessments can guide therapy choice and impact prognosis. However, little is known about the impact of genetic variability within a tumor, intratumoral heterogeneity (ITH), on disease progression or outcome. Current approaches using bulk...

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Main Authors: Alison M Thompson, Jordan L Smith, Luke D Monroe, Jason E Kreutz, Thomas Schneider, Bryant S Fujimoto, Daniel T Chiu, Jerald P Radich, Amy L Paguirigan
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5931502?pdf=render
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spelling doaj-ff31e625eb914d559a7bbb87f0ea16542020-11-24T22:12:25ZengPublic Library of Science (PLoS)PLoS ONE1932-62032018-01-01135e019680110.1371/journal.pone.0196801Self-digitization chip for single-cell genotyping of cancer-related mutations.Alison M ThompsonJordan L SmithLuke D MonroeJason E KreutzThomas SchneiderBryant S FujimotoDaniel T ChiuJerald P RadichAmy L PaguiriganCancer is a heterogeneous disease, and patient-level genetic assessments can guide therapy choice and impact prognosis. However, little is known about the impact of genetic variability within a tumor, intratumoral heterogeneity (ITH), on disease progression or outcome. Current approaches using bulk tumor specimens can suggest the presence of ITH, but only single-cell genetic methods have the resolution to describe the underlying clonal structures themselves. Current techniques tend to be labor and resource intensive and challenging to characterize with respect to sources of biological and technical variability. We have developed a platform using a microfluidic self-digitization chip to partition cells in stationary volumes for cell imaging and allele-specific PCR. Genotyping data from only confirmed single-cell volumes is obtained and subject to a variety of relevant quality control assessments such as allele dropout, false positive, and false negative rates. We demonstrate single-cell genotyping of the NPM1 type A mutation, an important prognostic indicator in acute myeloid leukemia, on single cells of the cell line OCI-AML3, describing a more complex zygosity distribution than would be predicted via bulk analysis.http://europepmc.org/articles/PMC5931502?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Alison M Thompson
Jordan L Smith
Luke D Monroe
Jason E Kreutz
Thomas Schneider
Bryant S Fujimoto
Daniel T Chiu
Jerald P Radich
Amy L Paguirigan
spellingShingle Alison M Thompson
Jordan L Smith
Luke D Monroe
Jason E Kreutz
Thomas Schneider
Bryant S Fujimoto
Daniel T Chiu
Jerald P Radich
Amy L Paguirigan
Self-digitization chip for single-cell genotyping of cancer-related mutations.
PLoS ONE
author_facet Alison M Thompson
Jordan L Smith
Luke D Monroe
Jason E Kreutz
Thomas Schneider
Bryant S Fujimoto
Daniel T Chiu
Jerald P Radich
Amy L Paguirigan
author_sort Alison M Thompson
title Self-digitization chip for single-cell genotyping of cancer-related mutations.
title_short Self-digitization chip for single-cell genotyping of cancer-related mutations.
title_full Self-digitization chip for single-cell genotyping of cancer-related mutations.
title_fullStr Self-digitization chip for single-cell genotyping of cancer-related mutations.
title_full_unstemmed Self-digitization chip for single-cell genotyping of cancer-related mutations.
title_sort self-digitization chip for single-cell genotyping of cancer-related mutations.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2018-01-01
description Cancer is a heterogeneous disease, and patient-level genetic assessments can guide therapy choice and impact prognosis. However, little is known about the impact of genetic variability within a tumor, intratumoral heterogeneity (ITH), on disease progression or outcome. Current approaches using bulk tumor specimens can suggest the presence of ITH, but only single-cell genetic methods have the resolution to describe the underlying clonal structures themselves. Current techniques tend to be labor and resource intensive and challenging to characterize with respect to sources of biological and technical variability. We have developed a platform using a microfluidic self-digitization chip to partition cells in stationary volumes for cell imaging and allele-specific PCR. Genotyping data from only confirmed single-cell volumes is obtained and subject to a variety of relevant quality control assessments such as allele dropout, false positive, and false negative rates. We demonstrate single-cell genotyping of the NPM1 type A mutation, an important prognostic indicator in acute myeloid leukemia, on single cells of the cell line OCI-AML3, describing a more complex zygosity distribution than would be predicted via bulk analysis.
url http://europepmc.org/articles/PMC5931502?pdf=render
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