Replicative senescence is associated with nuclear reorganization and with DNA methylation at specific transcription
Sonja Hänzelmann1, Fabian Beier2, Eduardo G Gusmao1
1Interdisciplinary Centre for Clinical Research (IZKF), RWTH University Medical School, Aachen, Germany ; Institute for Biomedical Technology - Cell Biology, RWTH University Medical School, Aachen, Germany.
Background:
Primary cells enter replicative senescence after a limited number of cell divisions. This process needs to be considered in cell culture experiments, and it is particularly important for regenerative medicine. Replicative senescence is associated with reproducible changes in DNA methylation (DNAm) at specific sites in the genome. The mechanism that drives senescence-associated DNAm changes remains unknown - it may involve stochastic DNAm drift due to imperfect maintenance of epigenetic marks or it is directly regulated at specific sites in the genome.
Results:
In this study, we analyzed the reorganization of nuclear architecture and DNAm changes during long-term culture of human fibroblasts and mesenchymal stromal cells (MSCs). We demonstrate that telomeres shorten and shift towards the nuclear center at later passages. In addition, DNAm profiles, either analyzed by MethylCap-seq or by 450k IlluminaBeadChip technology, revealed consistent senescence-associated hypermethylation in regions associated with H3K27me3, H3K4me3, and H3K4me1 histone marks, whereas hypomethylation was associated with chromatin containing H3K9me3 and lamina-associated domains (LADs). DNA hypermethylation was significantly enriched in the vicinity of genes that are either up- or downregulated at later passages. Furthermore, specific transcription factor binding motifs (e.g. EGR1, TFAP2A, and ETS1) were significantly enriched in differentially methylated regions and in the promoters of differentially expressed genes.
Conclusions:
Senescence-associated DNA hypermethylation occurs at specific sites in the genome and reflects functional changes in the course of replicative senescence. These results indicate that tightly regulated epigenetic modifications during long-term culture contribute to changes in nuclear organization and gene expression.
Insights
Replicative senescence involves reproducible DNA methylation changes at specific genomic sites. These epigenetic modifications are linked to altered nuclear organization and gene expression during cell aging.
Area of Science:
- Cell Biology
- Epigenetics
- Genomics
Background:
- Primary cells undergo replicative senescence after limited divisions, impacting cell culture and regenerative medicine.
- Senescence is linked to reproducible DNA methylation (DNAm) changes, but the underlying mechanisms are unclear.
- Potential mechanisms include stochastic DNAm drift or direct epigenetic regulation.
Purpose of the Study:
- To investigate nuclear architecture reorganization and DNAm changes during long-term culture of human fibroblasts and mesenchymal stromal cells (MSCs).
Main Methods:
- Analysis of telomere dynamics during long-term cell culture.
- DNA methylation profiling using MethylCap-seq and Illumina 450k BeadChip technology.
- Integration of DNAm data with gene expression profiles and transcription factor binding motifs.
Main Results:
- Telomeres shorten and migrate centripetally with increasing cell passage.
- Senescence-associated DNA hypermethylation observed in H3K27me3, H3K4me3, and H3K4me1 regions; hypomethylation in H3K9me3 and lamina-associated domains (LADs).
- DNA hypermethylation enriched near differentially expressed genes; specific transcription factor motifs (EGR1, TFAP2A, ETS1) found in differentially methylated regions.
Conclusions:
- Senescence-associated DNA hypermethylation is site-specific and reflects functional alterations during replicative senescence.
- Epigenetic modifications during long-term culture contribute to nuclear organization and gene expression changes.
- These findings highlight the role of regulated epigenetic changes in cellular aging processes.
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