An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability

Micronuclei are small, extranuclear bodies that are distinct from the primary cell nucleus. Micronucleus formation is an aberrant event that suggests a history of genotoxic stress or chromosome mis-segregation events. Accordingly, assays evaluating micronucleus formation serve as useful tools within...

Full description

Bibliographic Details
Main Authors: Chloe C. Lepage, Laura L. Thompson, Bradley Larson, Kirk J. McManus
Format: Article
Language:English
Published: MDPI AG 2020-02-01
Series:Cells
Subjects:
Online Access:https://www.mdpi.com/2073-4409/9/2/344
id doaj-a210463b21fe46608e7963e8b4d83520
record_format Article
spelling doaj-a210463b21fe46608e7963e8b4d835202020-11-25T01:42:25ZengMDPI AGCells2073-44092020-02-019234410.3390/cells9020344cells9020344An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome InstabilityChloe C. Lepage0Laura L. Thompson1Bradley Larson2Kirk J. McManus3Department of Biochemistry &amp; Medical Genetics, University of Manitoba, Winnipeg, MB R3E 0J9, CanadaDepartment of Biochemistry &amp; Medical Genetics, University of Manitoba, Winnipeg, MB R3E 0J9, CanadaBioTek Instruments, Inc., Winooski, VT 05404, USADepartment of Biochemistry &amp; Medical Genetics, University of Manitoba, Winnipeg, MB R3E 0J9, CanadaMicronuclei are small, extranuclear bodies that are distinct from the primary cell nucleus. Micronucleus formation is an aberrant event that suggests a history of genotoxic stress or chromosome mis-segregation events. Accordingly, assays evaluating micronucleus formation serve as useful tools within the fields of toxicology and oncology. Here, we describe a novel micronucleus formation assay that utilizes a high-throughput imaging platform and automated image analysis software for accurate detection and rapid quantification of micronuclei at the single cell level. We show that our image analysis parameters are capable of identifying dose-dependent increases in micronucleus formation within three distinct cell lines following treatment with two established genotoxic agents, etoposide or bleomycin. We further show that this assay detects micronuclei induced through silencing of the established chromosome instability gene, <i>SMC1A</i>. Thus, the micronucleus formation assay described here is a versatile and efficient alternative to more laborious cytological approaches, and greatly increases throughput, which will be particularly beneficial for large-scale chemical or genetic screens.https://www.mdpi.com/2073-4409/9/2/344micronucleusmicronucleigenotoxicitychromosome instabilitysingle cell quantitative imaging microscopy (scquantim)cancer
collection DOAJ
language English
format Article
sources DOAJ
author Chloe C. Lepage
Laura L. Thompson
Bradley Larson
Kirk J. McManus
spellingShingle Chloe C. Lepage
Laura L. Thompson
Bradley Larson
Kirk J. McManus
An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
Cells
micronucleus
micronuclei
genotoxicity
chromosome instability
single cell quantitative imaging microscopy (scquantim)
cancer
author_facet Chloe C. Lepage
Laura L. Thompson
Bradley Larson
Kirk J. McManus
author_sort Chloe C. Lepage
title An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
title_short An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
title_full An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
title_fullStr An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
title_full_unstemmed An Automated, Single Cell Quantitative Imaging Microscopy Approach to Assess Micronucleus Formation, Genotoxicity and Chromosome Instability
title_sort automated, single cell quantitative imaging microscopy approach to assess micronucleus formation, genotoxicity and chromosome instability
publisher MDPI AG
series Cells
issn 2073-4409
publishDate 2020-02-01
description Micronuclei are small, extranuclear bodies that are distinct from the primary cell nucleus. Micronucleus formation is an aberrant event that suggests a history of genotoxic stress or chromosome mis-segregation events. Accordingly, assays evaluating micronucleus formation serve as useful tools within the fields of toxicology and oncology. Here, we describe a novel micronucleus formation assay that utilizes a high-throughput imaging platform and automated image analysis software for accurate detection and rapid quantification of micronuclei at the single cell level. We show that our image analysis parameters are capable of identifying dose-dependent increases in micronucleus formation within three distinct cell lines following treatment with two established genotoxic agents, etoposide or bleomycin. We further show that this assay detects micronuclei induced through silencing of the established chromosome instability gene, <i>SMC1A</i>. Thus, the micronucleus formation assay described here is a versatile and efficient alternative to more laborious cytological approaches, and greatly increases throughput, which will be particularly beneficial for large-scale chemical or genetic screens.
topic micronucleus
micronuclei
genotoxicity
chromosome instability
single cell quantitative imaging microscopy (scquantim)
cancer
url https://www.mdpi.com/2073-4409/9/2/344
work_keys_str_mv AT chloeclepage anautomatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT lauralthompson anautomatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT bradleylarson anautomatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT kirkjmcmanus anautomatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT chloeclepage automatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT lauralthompson automatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT bradleylarson automatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
AT kirkjmcmanus automatedsinglecellquantitativeimagingmicroscopyapproachtoassessmicronucleusformationgenotoxicityandchromosomeinstability
_version_ 1725036511198445568