Single-cell microarray enables high-throughput evaluation of DNA double-strand breaks and DNA repair inhibitors.

dc.contributor.author

Weingeist, David M

dc.contributor.author

Ge, Jing

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Wood, David K

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Mutamba, James T

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Huang, Qiuying

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Rowland, Elizabeth A

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Yaffe, Michael B

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Floyd, Scott

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Engelward, Bevin P

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United States

dc.date.accessioned

2018-01-01T18:24:41Z

dc.date.available

2018-01-01T18:24:41Z

dc.date.issued

2013-03-15

dc.description.abstract

A key modality of non-surgical cancer management is DNA damaging therapy that causes DNA double-strand breaks that are preferentially toxic to rapidly dividing cancer cells. Double-strand break repair capacity is recognized as an important mechanism in drug resistance and is therefore a potential target for adjuvant chemotherapy. Additionally, spontaneous and environmentally induced DSBs are known to promote cancer, making DSB evaluation important as a tool in epidemiology, clinical evaluation and in the development of novel pharmaceuticals. Currently available assays to detect double-strand breaks are limited in throughput and specificity and offer minimal information concerning the kinetics of repair. Here, we present the CometChip, a 96-well platform that enables assessment of double-strand break levels and repair capacity of multiple cell types and conditions in parallel and integrates with standard high-throughput screening and analysis technologies. We demonstrate the ability to detect multiple genetic deficiencies in double-strand break repair and evaluate a set of clinically relevant chemical inhibitors of one of the major double-strand break repair pathways, non-homologous end-joining. While other high-throughput repair assays measure residual damage or indirect markers of damage, the CometChip detects physical double-strand breaks, providing direct measurement of damage induction and repair capacity, which may be useful in developing and implementing treatment strategies with reduced side effects.

dc.identifier

https://www.ncbi.nlm.nih.gov/pubmed/23422001

dc.identifier

23880

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1551-4005

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https://hdl.handle.net/10161/15938

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eng

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Informa UK Limited

dc.relation.ispartof

Cell Cycle

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10.4161/cc.23880

dc.subject

DNA double-strand breaks

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DNA repair

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DNA-PK inhibitors

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high throughput

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microarray

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neutral comet assay

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neutral single-cell electrophoresis assay

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non-homologous end-joining

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Animals

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CHO Cells

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Cell Line

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Chromones

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Cricetinae

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DNA Breaks, Double-Stranded

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DNA Damage

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DNA Repair

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DNA-Activated Protein Kinase

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Drug Resistance, Neoplasm

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Enzyme Inhibitors

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High-Throughput Screening Assays

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Humans

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Morpholines

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Neoplasms

dc.title

Single-cell microarray enables high-throughput evaluation of DNA double-strand breaks and DNA repair inhibitors.

dc.type

Journal article

pubs.author-url

https://www.ncbi.nlm.nih.gov/pubmed/23422001

pubs.begin-page

907

pubs.end-page

915

pubs.issue

6

pubs.organisational-group

Basic Science Departments

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Clinical Science Departments

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Duke

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Duke Cancer Institute

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Institutes and Centers

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Pharmacology & Cancer Biology

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Radiation Oncology

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School of Medicine

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Temp group - logins allowed

pubs.publication-status

Published

pubs.volume

12

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