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Updated: Oct 9, 2025

Measurement of Protein Turnover Rates in Senescent and Non-Dividing Cultured Cells with Metabolic Labeling and Mass Spectrometry
Published on: April 6, 2022
tRNA biogenesis and specific aminoacyl-tRNA synthetases regulate senescence stability under the control of mTOR
Jordan Guillon1, Hugo Coquelet1, Géraldine Leman1
1Centre de Recherche en Cancérologie et Immunologie Nantes Angers (CRCINA), INSERM U1232 Paul Papin ICO Cancer Center, Université d'Angers, Angers, France.
Abstract:
Oncogenes or chemotherapy treatments trigger the induction of suppressive pathways such as apoptosis or senescence. Senescence was initially defined as a definitive arrest of cell proliferation but recent results have shown that this mechanism is also associated with cancer progression and chemotherapy resistance. Senescence is therefore much more heterogeneous than initially thought. How this response varies is not really understood, it has been proposed that its outcome relies on the secretome of senescent cells and on the maintenance of their epigenetic marks. Using experimental models of senescence escape, we now described that the stability of this proliferative arrest relies on specific tRNAs and aminoacyl-tRNA synthetases. Following chemotherapy treatment, the DNA binding of the type III RNA polymerase was reduced to prevent tRNA transcription and induce a complete cell cycle arrest. By contrast, during senescence escape, specific tRNAs such as tRNA-Leu-CAA and tRNA-Tyr-GTA were up-regulated. Reducing tRNA transcription appears necessary to control the strength of senescence since RNA pol III inhibition through BRF1 depletion maintained senescence and blocked the generation of escaping cells. mTOR inhibition also prevented chemotherapy-induced senescence escape in association with a reduction of tRNA-Leu-CAA and tRNA-Tyr-GTA expression. Further confirming the role of the tRNA-Leu-CAA and tRNA-Tyr-GTA, results showed that their corresponding tRNA ligases, LARS and YARS, were necessary for senescence escape. This effect was specific since the CARS ligase had no effect on persistence. By contrast, the down-regulation of LARS and YARS reduced the emergence of persistent cells and this was associated with the modulation of E2F1 target genes expression. Overall, these findings highlight a new regulation of tRNA biology during senescence and suggest that specific tRNAs and ligases contribute to the strength and heterogeneity of this tumor suppressive pathway.
Insights
Specific tRNAs and aminoacyl-tRNA synthetases regulate cell senescence, a key pathway in cancer progression and chemotherapy resistance. This study reveals their role in controlling senescence stability and escape, offering new therapeutic targets.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Senescence, a cell cycle arrest, is crucial in tumor suppression but also linked to cancer progression and chemotherapy resistance.
- The heterogeneity of senescence outcomes is not fully understood, with emerging evidence pointing to the cell secretome and epigenetic modifications.
- Specific tRNAs and aminoacyl-tRNA synthetases are newly implicated in maintaining the stability and heterogeneity of the senescence pathway.
Purpose of the Study:
- To investigate the role of specific tRNAs and aminoacyl-tRNA synthetases in regulating senescence stability and escape.
- To elucidate the mechanisms by which these molecules influence cell cycle arrest and chemotherapy resistance.
- To identify potential therapeutic targets for modulating senescence in cancer treatment.
Main Methods:
- Utilized experimental models of senescence escape following chemotherapy treatment.
- Analyzed the impact of RNA polymerase III (pol III) inhibition and mTOR inhibition on tRNA transcription and senescence.
- Investigated the necessity of specific tRNA ligases (LARS, YARS, CARS) for senescence escape and persistence.
Main Results:
- Chemotherapy treatment reduced tRNA transcription by DNA-binding type III RNA polymerase, inducing cell cycle arrest.
- Senescence escape involved upregulation of specific tRNAs (tRNA-Leu-CAA, tRNA-Tyr-GTA), while RNA pol III inhibition maintained senescence.
- Inhibition of mTOR reduced these specific tRNAs and prevented chemotherapy-induced senescence escape; LARS and YARS were essential for escape, while CARS was not.
Conclusions:
- Specific tRNAs and their ligases (LARS, YARS) play a critical role in the stability and heterogeneity of the senescence pathway.
- These molecules are key regulators of senescence escape, influencing cancer progression and chemotherapy resistance.
- Targeting specific tRNAs and aminoacyl-tRNA synthetases presents a novel strategy for cancer therapy.
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