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Updated: May 9, 2026

Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
Identification of microRNAs dysregulated in cellular senescence driven by endogenous genotoxic stress
Lolita S Nidadavolu1, Laura J Niedernhofer, Saleem A Khan
1Department of Microbiology and Molecular Genetics, University of Pittsburgh School of Medicine, Pittsburgh, PA 15219, USA.
Abstract:
XFE progeroid syndrome, a disease of accelerated aging caused by deficiency in the DNA repair endonuclease XPF-ERCC1, is modeled by Ercc1 knockout and hypomorphic mice. Tissues and primary cells from these mice senesce prematurely, offering a unique opportunity to identify factors that regulate senescence and aging. We compared microRNA (miRNA) expression in Ercc1-/- primary mouse embryonic fibroblasts (MEFs) and wild-type (WT) MEFs in different growth conditions to identify miRNAs that drive cellular senescence. Microarray analysis showed three differentially expressed miRNAs in passage 7 (P7) Ercc1-/- MEFs grown at 20% O2 compared to Ercc1-/- MEFs grown at 3% O2. Thirty-six differentially expressed miRNAs were identified in Ercc1-/- MEFs at P7 compared to early passage (P3) in 3% O2. Eight of these miRNAs (miR-449a, miR-455*, miR-128, miR-497, miR-543, miR-450b-3p, miR-872 and miR-10b) were similarly downregulated in the liver of progeroid Ercc1-/Δ and old WT mice compared to adult WT mice, a tissue that senesces with aging. Three miRNAs (miR-449a, miR-455* and miR-128) were also downregulated in Ercc1-/Δ and WT old mice kidneys compared to young WT mice. We also discovered that the miRNA expression regulator Dicer is significantly downregulated in tissues of old mice and late passage cells compared to young controls. Collectively these results support the conclusion that the miRNAs identified may play an important role in staving off cellular senescence and their altered expression could be indicative of aging.
Insights
Accelerated aging in XFE progeroid syndrome is linked to altered microRNA (miRNA) expression. Specific miRNAs may prevent cellular senescence, with their dysregulation indicating aging processes.
Area of Science:
- Molecular Biology
- Genetics
- Aging Research
Background:
- XFE progeroid syndrome involves premature aging due to DNA repair deficiency (XPF-ERCC1).
- Ercc1 knockout mice model this syndrome, exhibiting premature senescence in cells and tissues.
- These models provide a platform to study senescence and aging regulators.
Purpose of the Study:
- To identify microRNAs (miRNAs) involved in regulating cellular senescence and aging.
- To compare miRNA expression in premature aging models versus normal aging.
- To investigate the role of Dicer in miRNA regulation during aging.
Main Methods:
- Microarray analysis of miRNA expression in Ercc1-/- mouse embryonic fibroblasts (MEFs) under varying oxygen and passage conditions.
- Comparison of miRNA expression in livers and kidneys of progeroid mice and aged wild-type mice versus young controls.
- Assessment of Dicer expression in aged tissues and late-passage cells.
Main Results:
- Several miRNAs (e.g., miR-449a, miR-455*, miR-128) were downregulated in senescent Ercc1-/- MEFs and aged mouse tissues.
- Downregulation of specific miRNAs was observed in the liver and kidney tissues of aged and progeroid mice.
- Dicer, a key miRNA regulator, was significantly downregulated in aged tissues and senescent cells.
Conclusions:
- The identified miRNAs may play a crucial role in preventing cellular senescence.
- Altered expression of these miRNAs could serve as an indicator of the aging process.
- Dicer downregulation contributes to altered miRNA profiles in aging and senescence.
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