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Updated: May 7, 2026

Studying RNA Interactors of Protein Kinase RNA-Activated during the Mammalian Cell Cycle
Published on: March 5, 2019
Ribosomal S6 Kinase 2 (RSK2) maintains genomic stability by activating the Atm/p53-dependent DNA damage pathway
Han Chi Lim1, Li Xie, Wei Zhang
1Neural Stem Cell Research Lab, Research Department, National Neuroscience Institute, Singapore, Singapore.
Abstract:
Ribosomal S6 Kinase 2 (RSK2) is a member of the p90(RSK) family of serine/threonine kinases, which are widely expressed and respond to many growth factors, peptide hormones, and neurotransmitters. Loss-of function mutations in the RPS6KA3 gene, which encodes the RSK2 protein, have been implicated in Coffin-Lowry Syndrome (CLS), an X-linked mental retardation disorder associated with cognitive deficits and behavioral impairments. However, the cellular and molecular mechanisms underlying this neurological disorder are not known. Recent evidence suggests that defective DNA damage signaling might be associated with neurological disorders, but the role of RSK2 in the DNA damage pathway remains to be elucidated. Here, we show that Adriamycin-induced DNA damage leads to the phosphorylation of RSK2 at Ser227 and Thr577 in the chromatin fraction, promotes RSK2 nuclear translocation, and enhances RSK2 and Atm interactions in the nuclear fraction. Furthermore, using RSK2 knockout mouse fibroblasts and RSK2-deficient cells from CLS patients, we demonstrate that ablation of RSK2 impairs the phosphorylation of Atm at Ser1981 and the phosphorylation of p53 at Ser18 (mouse) or Ser15 (human) in response to genotoxic stress. We also show that RSK2 affects p53-mediated downstream cellular events in response to DNA damage, that RSK2 knockout relieves cell cycle arrest at the G2/M phase, and that an increased number of γH2AX foci, which are associated with defects in DNA repair, are present in RSK2-deficient cells. Taken together, our findings demonstrated that RSK2 plays an important role in the DNA damage pathway that maintains genomic stability by mediating cell cycle progression and DNA repair.
Insights
Ribosomal S6 Kinase 2 (RSK2) is crucial for DNA damage response and genomic stability. Its absence impairs DNA repair and cell cycle progression, potentially explaining neurological deficits in Coffin-Lowry Syndrome.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Ribosomal S6 Kinase 2 (RSK2) is a serine/threonine kinase involved in cellular signaling pathways.
- Mutations in the RPS6KA3 gene encoding RSK2 cause Coffin-Lowry Syndrome (CLS), characterized by intellectual disability.
- The precise role of RSK2 in DNA damage response and its link to neurological disorders remain unclear.
Purpose of the Study:
- To investigate the role of RSK2 in the DNA damage response pathway.
- To elucidate the molecular mechanisms by which RSK2 influences genomic stability.
- To explore the potential connection between RSK2 dysfunction and the neurological aspects of CLS.
Main Methods:
- Utilized Adriamycin to induce DNA damage in cell models.
- Examined RSK2 phosphorylation, nuclear translocation, and interactions with ATM.
- Employed RSK2 knockout mouse fibroblasts and CLS patient-derived cells.
- Assessed the phosphorylation of ATM and p53, cell cycle progression, and DNA repair foci (γH2AX).
Main Results:
- Adriamycin treatment induced RSK2 phosphorylation and nuclear translocation, enhancing its interaction with ATM.
- RSK2 deficiency impaired ATM and p53 phosphorylation following genotoxic stress.
- RSK2 ablation led to defective p53-mediated downstream events, relieved G2/M cell cycle arrest, and increased γH2AX foci, indicating impaired DNA repair.
- RSK2 plays a significant role in mediating cell cycle progression and DNA repair.
Conclusions:
- RSK2 is a key mediator in the DNA damage response pathway.
- RSK2 is essential for maintaining genomic stability through cell cycle control and DNA repair.
- Dysfunction of RSK2 contributes to genomic instability and may underlie the neurological deficits observed in Coffin-Lowry Syndrome.
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