Matches in SemOpenAlex for { <https://semopenalex.org/work/W3213795478> ?p ?o ?g. }
- W3213795478 endingPage "5561" @default.
- W3213795478 startingPage "5561" @default.
- W3213795478 abstract "DNA double-strand breaks (DSBs), known as the most severe damage in chromatin, were induced in breast cancer cells and normal skin fibroblasts by 2 Gy ionizing photon radiation. In response to DSB induction, phosphorylation of the histone variant H2AX to γH2AX was observed in the form of foci visualized by specific antibodies. By means of super-resolution single-molecule localization microscopy (SMLM), it has been recently shown in a first article about these data that these foci can be separated into clusters of about the same size (diameter ~400 nm). The number of clusters increased with the dose applied and decreased with the repair time. It has also been shown that during the repair period, antibody-labeled MRE11 clusters of about half of the γH2AX cluster diameter were formed inside several γH2AX clusters. MRE11 is part of the MRE11-RAD50-NBS1 (MRN) complex, which is known as a DNA strand resection and broken-end bridging component in homologous recombination repair (HRR) and alternative non-homologous end joining (a-NHEJ). This article is a follow-up of the former ones applying novel procedures of mathematics (topology) and similarity measurements on the data set: to obtain a measure for cluster shape and shape similarities, topological quantifications employing persistent homology were calculated and compared. In addition, based on our findings that γH2AX clusters associated with heterochromatin show a high degree of similarity independently of dose and repair time, these earlier published topological analyses and similarity calculations comparing repair foci within individual cells were extended by topological data averaging (2nd-generation heatmaps) over all cells analyzed at a given repair time point; thereby, the two dimensions (0 and 1) expressed by components and holes were studied separately. Finally, these mean value heatmaps were averaged, in addition. For γH2AX clusters, in both normal fibroblast and MCF-7 cancer cell lines, an increased similarity was found at early time points (up to 60 min) after irradiation for both components and holes of clusters. In contrast, for MRE11, the peak in similarity was found at later time points (2 h up to 48 h) after irradiation. In general, the normal fibroblasts showed quicker phosphorylation of H2AX and recruitment of MRE11 to γH2AX clusters compared to breast cancer cells and a shorter time interval of increased similarity for γH2AX clusters. γH2AX foci and randomly distributed MRE11 molecules naturally occurring in non-irradiated control cells did not show any significant topological similarity." @default.
- W3213795478 created "2021-11-22" @default.
- W3213795478 creator A5074771839 @default.
- W3213795478 creator A5077253758 @default.
- W3213795478 creator A5078190978 @default.
- W3213795478 creator A5088017596 @default.
- W3213795478 creator A5091516433 @default.
- W3213795478 creator A5091718819 @default.
- W3213795478 date "2021-11-05" @default.
- W3213795478 modified "2023-10-14" @default.
- W3213795478 title "Topological Analysis of γH2AX and MRE11 Clusters Detected by Localization Microscopy during X-ray-Induced DNA Double-Strand Break Repair" @default.
- W3213795478 cites W1841331176 @default.
- W3213795478 cites W1904711187 @default.
- W3213795478 cites W1958856311 @default.
- W3213795478 cites W1963483008 @default.
- W3213795478 cites W1968043437 @default.
- W3213795478 cites W1975280594 @default.
- W3213795478 cites W1977088495 @default.
- W3213795478 cites W1982459634 @default.
- W3213795478 cites W1985775217 @default.
- W3213795478 cites W1998592800 @default.
- W3213795478 cites W2010711320 @default.
- W3213795478 cites W2012063681 @default.
- W3213795478 cites W2021799945 @default.
- W3213795478 cites W2022811243 @default.
- W3213795478 cites W2036643295 @default.
- W3213795478 cites W2051950507 @default.
- W3213795478 cites W2071175902 @default.
- W3213795478 cites W2071391326 @default.
- W3213795478 cites W2077494070 @default.
- W3213795478 cites W2090854519 @default.
- W3213795478 cites W2099077495 @default.
- W3213795478 cites W2099627146 @default.
- W3213795478 cites W2103169616 @default.
- W3213795478 cites W2110143309 @default.
- W3213795478 cites W2110979604 @default.
- W3213795478 cites W2123241821 @default.
- W3213795478 cites W2128117352 @default.
- W3213795478 cites W2167532958 @default.
- W3213795478 cites W2238041893 @default.
- W3213795478 cites W2407730042 @default.
- W3213795478 cites W2614952490 @default.
- W3213795478 cites W2623030379 @default.
- W3213795478 cites W2737595608 @default.
- W3213795478 cites W2753229012 @default.
- W3213795478 cites W2756517975 @default.
- W3213795478 cites W2772545509 @default.
- W3213795478 cites W2781597432 @default.
- W3213795478 cites W2791027130 @default.
- W3213795478 cites W2791943592 @default.
- W3213795478 cites W2885800850 @default.
- W3213795478 cites W2888731769 @default.
- W3213795478 cites W2889828133 @default.
- W3213795478 cites W2893957285 @default.
- W3213795478 cites W2954640452 @default.
- W3213795478 cites W2990048077 @default.
- W3213795478 cites W3000223848 @default.
- W3213795478 cites W3001144267 @default.
- W3213795478 cites W3084221577 @default.
- W3213795478 cites W3091762511 @default.
- W3213795478 cites W3104059235 @default.
- W3213795478 cites W3118176672 @default.
- W3213795478 cites W3124501568 @default.
- W3213795478 cites W3127108684 @default.
- W3213795478 cites W3135485886 @default.
- W3213795478 cites W3151334171 @default.
- W3213795478 cites W3169755483 @default.
- W3213795478 cites W4252054032 @default.
- W3213795478 cites W919607714 @default.
- W3213795478 doi "https://doi.org/10.3390/cancers13215561" @default.
- W3213795478 hasPubMedCentralId "https://www.ncbi.nlm.nih.gov/pmc/articles/8582740" @default.
- W3213795478 hasPubMedId "https://pubmed.ncbi.nlm.nih.gov/34771723" @default.
- W3213795478 hasPublicationYear "2021" @default.
- W3213795478 type Work @default.
- W3213795478 sameAs 3213795478 @default.
- W3213795478 citedByCount "8" @default.
- W3213795478 countsByYear W32137954782021 @default.
- W3213795478 countsByYear W32137954782022 @default.
- W3213795478 countsByYear W32137954782023 @default.
- W3213795478 crossrefType "journal-article" @default.
- W3213795478 hasAuthorship W3213795478A5074771839 @default.
- W3213795478 hasAuthorship W3213795478A5077253758 @default.
- W3213795478 hasAuthorship W3213795478A5078190978 @default.
- W3213795478 hasAuthorship W3213795478A5088017596 @default.
- W3213795478 hasAuthorship W3213795478A5091516433 @default.
- W3213795478 hasAuthorship W3213795478A5091718819 @default.
- W3213795478 hasBestOaLocation W32137954781 @default.
- W3213795478 hasConcept C102744134 @default.
- W3213795478 hasConcept C114614502 @default.
- W3213795478 hasConcept C134935766 @default.
- W3213795478 hasConcept C143425029 @default.
- W3213795478 hasConcept C153911025 @default.
- W3213795478 hasConcept C184720557 @default.
- W3213795478 hasConcept C185592680 @default.
- W3213795478 hasConcept C33923547 @default.
- W3213795478 hasConcept C54355233 @default.
- W3213795478 hasConcept C552990157 @default.
- W3213795478 hasConcept C64927066 @default.