Automated Image Processing for the Analysis of DNA Repair Dynamics

dc.contributor.authorRiess, Thorstendeu
dc.contributor.authorDietz, Christian
dc.contributor.authorTomas, Martin
dc.contributor.authorFerrando-May, Elisa
dc.contributor.authorMerhof, Dorit
dc.date.accessioned2011-06-16T15:55:58Zdeu
dc.date.available2011-06-16T15:55:58Zdeu
dc.date.issued2011deu
dc.description.abstractThe efficient repair of cellular DNA is essential for the maintenance and inheritance of genomic information. In order to cope with the high frequency of spontaneous and induced DNA damage, a multitude of repair mechanisms have evolved. These are enabled by a wide range of protein factors specifically recognizing different types of lesions and finally restoring the normal DNA sequence. This work focuses on the repair factor XPC (xeroderma pigmentosum complementation group C), which identifies bulky DNA lesions and initiates their removal via the nucleotide excision repair pathway. The binding of XPC to damaged DNA can be visualized in living cells by following the accumulation of a fluorescent XPC fusion at lesions induced by laser microirradiation in a fluorescence microscope. In this work, an automated image processing pipeline is presented which allows to identify and quantify the accumulation reaction without any user interaction. The image processing pipeline comprises a preprocessing stage where the image stack data is filtered and the nucleus of interest is segmented. Afterwards, the images are registered to each other in order to account for movements of the cell, and then a bounding box enclosing the XPC-specific signal is automatically determined. Finally, the time-dependent relocation of XPC is evaluated by analyzing the intensity change within this box. Comparison of the automated processing results with the manual evaluation yields qualitatively similar results. However, the automated analysis provides more accurate, reproducible data with smaller standard errors. The image processing pipeline presented in this work allows for an efficient analysis of large amounts of experimental data with no user interaction required.eng
dc.description.versionpublished
dc.identifier.arxiv1101.3391deu
dc.identifier.ppn359881114deu
dc.identifier.urihttp://kops.uni-konstanz.de/handle/123456789/13656
dc.language.isoengdeu
dc.legacy.dateIssued2011-06-16deu
dc.rightsterms-of-usedeu
dc.rights.urihttps://rightsstatements.org/page/InC/1.0/deu
dc.subjectAutomated intensity measurementdeu
dc.subjectDNA repairdeu
dc.subjectfluorescence microscopydeu
dc.subject.ddc004deu
dc.titleAutomated Image Processing for the Analysis of DNA Repair Dynamicseng
dc.typePREPRINTdeu
dspace.entity.typePublication
kops.citation.bibtex
@unpublished{Riess2011Autom-13656,
  year={2011},
  title={Automated Image Processing for the Analysis of DNA Repair Dynamics},
  author={Riess, Thorsten and Dietz, Christian and Tomas, Martin and Ferrando-May, Elisa and Merhof, Dorit}
}
kops.citation.iso690RIESS, Thorsten, Christian DIETZ, Martin TOMAS, Elisa FERRANDO-MAY, Dorit MERHOF, 2011. Automated Image Processing for the Analysis of DNA Repair Dynamicsdeu
kops.citation.iso690RIESS, Thorsten, Christian DIETZ, Martin TOMAS, Elisa FERRANDO-MAY, Dorit MERHOF, 2011. Automated Image Processing for the Analysis of DNA Repair Dynamicseng
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kops.submitter.emailmichael.ketzer@uni-konstanz.dedeu
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temp.target.additionalBiologie, Physikdeu

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