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Heterogeneity of Cellular Senescence: Cell Type-Specific and Senescence Stimulus-Dependent Epigenetic Alterations
Katarzyna Malgorzata Kwiatkowska, Eleni Mavrogonatou, Adamantia Papadopoulou, Claudia Sala, Luciano Calzari, Davide Gentilini, Maria Giulia Bacalini, Daniele Dall’Olio, Gastone Castellani, Francesco Ravaioli, Claudio Franceschi, Paolo Garagnani, Chiara Pirazzini, Dimitris Kletsas
Cells · 2023 · ▲ 47 citations
Epigenetic alterations
Cellular senescence
Stem-cell exhaustion
Stem-cell therapy
Cell culture / in vitro
Human
Abstract
The aim of the present study was to provide a comprehensive characterization of whole genome DNA methylation patterns in replicative and ionizing irradiation- or doxorubicin-induced premature senescence(definition), exhaustively exploring epigenetic modifications in three different human cell types: in somatic diploid skin fibroblasts and in bone marrow- and adipose-derived mesenchymal stem cells. With CpG-wise differential analysis, three epigenetic signatures were identified: (a) cell type- and treatment-specific signature; (b) cell type-specific senescence-related signature; and (c) cell type-transversal replicative senescence-related signature. Cluster analysis revealed that only replicative senescent cells created a distinct group reflecting notable alterations in the DNA methylation patterns accompanying this cellular state. Replicative senescence-associated epigenetic changes seemed to be of such an extent that they surpassed interpersonal dissimilarities. Enrichment in pathways linked to the nervous system and involved in the neurological functions was shown after pathway analysis of genes involved in the cell type-transversal replicative senescence-related signature. Although DNA methylation clock analysis provided no statistically significant evidence on epigenetic age acceleration related to senescence, a persistent trend of increased biological age in replicative senescent cultures of all three cell types was observed. Overall, this work indicates the heterogeneity of senescent cells depending on the tissue of origin and the type of senescence inducer that could be putatively translated to a distinct impact on tissue homeostasis.
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- 10.3390/cells12060927
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- 2026-06-03 MST
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APA
Kwiatkowska, K.M., Mavrogonatou, E., Papadopoulou, A., Sala, C., Calzari, L., Gentilini, D., Bacalini, M.G., Dall’Olio, D., Castellani, G., Ravaioli, F., Franceschi, C., Garagnani, P., Pirazzini, C., & Kletsas, D. (2023). Heterogeneity of Cellular Senescence: Cell Type-Specific and Senescence Stimulus-Dependent Epigenetic Alterations. <em>Cells</em>. https://doi.org/10.3390/cells12060927
Vancouver
Kwiatkowska KM, Mavrogonatou E, Papadopoulou A, Sala C, Calzari L, Gentilini D, et al. Heterogeneity of Cellular Senescence: Cell Type-Specific and Senescence Stimulus-Dependent Epigenetic Alterations. Cells. 2023. doi:10.3390/cells12060927.
BibTeX
@article{katarzyna2023Hetero,
title = {Heterogeneity of Cellular Senescence: Cell Type-Specific and Senescence Stimulus-Dependent Epigenetic Alterations},
author = {Katarzyna Malgorzata Kwiatkowska and Eleni Mavrogonatou and Adamantia Papadopoulou and Claudia Sala and Luciano Calzari and Davide Gentilini and Maria Giulia Bacalini and Daniele Dall’Olio and Gastone Castellani and Francesco Ravaioli and Claudio Franceschi and Paolo Garagnani and Chiara Pirazzini and Dimitris Kletsas},
journal = {Cells},
year = {2023},
doi = {10.3390/cells12060927},
}
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