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Updated: May 31, 2026

Induction and Validation of Cellular Senescence in Primary Human Cells
Published on: June 20, 2018
An RNA interference screen for identifying downstream effectors of the p53 and pRB tumour suppressor pathways
Emilie Rovillain1, Louise Mansfield, Christopher J Lord
1Department of Neurodegenerative Disease, UCL Institute of Neurology, Queen Square, London WC1N 3BG, UK.
Background:
Cellular senescence is an irreversible cell cycle arrest that normal cells undergo in response to progressive shortening of telomeres, changes in telomeric structure, oncogene activation or oxidative stress and acts as an important tumour suppressor mechanism.
Results:
To identify the downstream effectors of the p53-p21 and p16-pRB tumour suppressor pathways crucial for mediating entry into senescence, we have carried out a loss-of-function RNA interference screen in conditionally immortalised human fibroblasts that can be induced to rapidly undergo senescence, whereas in primary cultures senescence is stochastic and occurs asynchronously. These cells are immortal but undergo a rapid irreversible arrest upon activation of the p53-p21 and p16-pRB pathways that can be readily bypassed upon their inactivation. The primary screen identified 112 known genes including p53 and another 29 shRNAmirs targetting as yet unidentified loci. Comparison of these known targets with genes known to be up-regulated upon senescence in these cells, by micro-array expression profiling, identified 4 common genes TMEM9B, ATXN10, LAYN and LTBP2/3. Direct silencing of these common genes, using lentiviral shRNAmirs, bypassed senescence in the conditionally immortalised cells.
Conclusion:
The senescence bypass screen identified TMEM9B, ATXN10, LAYN and LTBP2/3 as novel downstream effectors of the p53-p21 and p16-pRB tumour suppressor pathways. Although none of them has previously been linked to cellular senescence, TMEM9B has been suggested to be an upstream activator of NF-κB signalling which has been found to have a causal role in promoting senescence. Future studies will focus on determining on how many of the other primary hits also have a casual role in senescence and what is the mechanism of action.
Insights
Researchers identified TMEM9B, ATXN10, LAYN, and LTBP2/3 as new downstream effectors of tumor suppressor pathways that regulate cellular senescence. Silencing these genes bypassed senescence, revealing novel roles in cell cycle arrest.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Cellular senescence is a crucial tumor suppressor mechanism involving irreversible cell cycle arrest.
- It is triggered by various stressors including telomere shortening and oxidative stress.
Purpose of the Study:
- To identify downstream effectors of the p53-p21 and p16-pRB tumor suppressor pathways in cellular senescence.
- To uncover novel genes involved in regulating the senescence entry and bypass.
Main Methods:
- Conducted a loss-of-function RNA interference screen in conditionally immortalized human fibroblasts.
- Utilized microarray expression profiling to compare screen targets with senescence-upregulated genes.
- Validated candidate genes by silencing them using lentiviral shRNAmirs.
Main Results:
- Identified 112 known genes and 29 novel loci targeted by shRNAmirs in the screen.
- Discovered four common genes: TMEM9B, ATXN10, LAYN, and LTBP2/3, linking them to senescence pathways.
- Demonstrated that silencing these four genes bypassed senescence in the studied cells.
Conclusions:
- TMEM9B, ATXN10, LAYN, and LTBP2/3 are novel downstream effectors of the p53-p21 and p16-pRB tumor suppressor pathways.
- These genes play a role in regulating cellular senescence, with TMEM9B potentially linked to NF-κB signaling.
- Further research will explore the roles of other identified genes and their mechanisms in senescence.
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