Related Experiment Video
Updated: Apr 6, 2026

Measurement of Protein Turnover Rates in Senescent and Non-Dividing Cultured Cells with Metabolic Labeling and Mass Spectrometry
Published on: April 6, 2022
Proteomic analysis reveals novel common genes modulated in both replicative and stress-induced senescence
Mariangela Succoio1, Marika Comegna1, Chiara D'Ambrosio2
1Dipartimento di Medicina Molecolare e Biotecnologie Mediche, Università di Napoli Federico II, Napoli, Italy; CEINGE-Biotecnologie Avanzate s.c. a r.l, Napoli, Italy.
Abstract:
Cellular senescence causes profound changes in gene expression profile. In this study, we used a combined 2D-DIGE and nanoLC-ESI-LIT-MS/MS approach to evaluate the proteomic changes occurring both in replicative and stress-induced senescence of human IMR90 cells. Twenty protein spots were identified as shifting their quantitative representation in the same direction (over- or down-represented) in both conditions of senescence, which were associated with 25 sequence entries. Dedicated experiments demonstrated that the decreased representation of a set of these proteins is associated with the down-regulation of the corresponding mRNAs, indicating that the regulation of these genes during the senescence process occurs at a transcriptional level. We also performed functional studies by silencing nine of these genes in young cells, which demonstrated that RNA interference-mediated knockdown of LEPRE1, LIMA1/EPLIN, MAGOHA and MAGOHB induces a premature senescent phenotype in IMR90 cells. Chromatin immunoprecipitation experiments indicated that the reduced expression of these four genes is associated with changes in the histone methylation pattern of their promoters, as proved by the occurrence of increased repressive H3K27me3 along with decreased active H3K4me3 marks, respectively.
Biological Significance:
Cellular senescence, a stable form of cell cycle arrest, is recognized as a phenomenon related to aging and age-related pathologies as well as interfering with tumor progression. Gene expression changes are closely associated with the onset of senescence but the molecular pathways regulating this process are still poorly understood. By using proteomics coupled to functional studies, we here show that both replicative and stress-induced senescence share quantitative modification of four novel proteins, in addition to others already reported in the literature. When ectopically down-regulated, corresponding four genes induce a premature senescence in young cells. The observed parallelism concerning the down-regulation of these genes both in vitro and in vivo senescent cells may foresee a possible biomarker role of the corresponding proteins in monitoring the progression of both aging and age-related diseases. In conclusion, these results for the first time highlight a possible role of LEPRE1, LIMA1/EPLIN, MAGOHA and MAGOHB in the biology of cellular senescence/aging, thus contributing to gain a deeper knowledge of the molecular mechanisms involved in the senescence program.
Insights
Cellular senescence involves gene expression changes. This study identifies four novel genes (LEPRE1, LIMA1, MAGOHA, MAGOHB) that, when downregulated, induce premature senescence, offering potential biomarkers for aging and disease.
Area of Science:
- Molecular Biology
- Cell Biology
- Gerontology
Background:
- Cellular senescence, a state of stable cell cycle arrest, is linked to aging, age-related diseases, and tumor progression.
- While gene expression alterations accompany senescence, the underlying regulatory pathways remain incompletely understood.
Purpose of the Study:
- To investigate proteomic changes in replicative and stress-induced cellular senescence in human IMR90 cells.
- To identify novel molecular players involved in the regulation of cellular senescence and aging.
Main Methods:
- Utilized a combined 2D-DIGE and nanoLC-ESI-LIT-MS/MS approach to analyze proteomic profiles.
- Conducted gene silencing experiments (RNA interference) to assess the functional impact of identified genes.
- Performed chromatin immunoprecipitation to investigate epigenetic modifications at gene promoters.
Main Results:
- Identified 20 protein spots with consistent quantitative changes in both senescence types, linked to 25 gene entries.
- Demonstrated transcriptional regulation for a subset of these genes during senescence.
- Showed that knockdown of LEPRE1, LIMA1/EPLIN, MAGOHA, and MAGOHB induces premature senescence in young cells.
- Revealed altered histone methylation patterns (increased H3K27me3, decreased H3K4me3) at the promoters of these four genes.
Conclusions:
- Both replicative and stress-induced senescence share quantitative modifications of four novel proteins.
- Downregulation of LEPRE1, LIMA1/EPLIN, MAGOHA, and MAGOHB can induce premature senescence, suggesting their role in aging.
- These proteins may serve as potential biomarkers for monitoring aging and age-related disease progression.
Related Concept Videos
Replicative Cell Senescence
Replicative Cell Senescence
Regulation of the Unfolded Protein Response
Gene Regulation During Sporulation

