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Temporal modulation of the NF-κB RelA network in response to different types of DNA damage
Amy E Campbell1, Catarina Ferraz Franco1, Ling-I Su2
1Centre for Proteome Research, Department of Biochemistry and Systems Biology, Institute of Systems, Molecular and Integrative Biology, University of Liverpool, Liverpool L69 7ZB, U.K.
Abstract:
Different types of DNA damage can initiate phosphorylation-mediated signalling cascades that result in stimulus specific pro- or anti-apoptotic cellular responses. Amongst its many roles, the NF-κB transcription factor RelA is central to these DNA damage response pathways. However, we still lack understanding of the co-ordinated signalling mechanisms that permit different DNA damaging agents to induce distinct cellular outcomes through RelA. Here, we use label-free quantitative phosphoproteomics to examine the temporal effects of exposure of U2OS cells to either etoposide (ETO) or hydroxyurea (HU) by monitoring the phosphorylation status of RelA and its protein binding partners. Although few stimulus-specific differences were identified in the constituents of phosphorylated RelA interactome after exposure to these DNA damaging agents, we observed subtle, but significant, changes in their phosphorylation states, as a function of both type and duration of treatment. The DNA double strand break (DSB)-inducing ETO invoked more rapid, sustained responses than HU, with regulated targets primarily involved in transcription, cell division and canonical DSB repair. Kinase substrate prediction of ETO-regulated phosphosites suggest abrogation of CDK and ERK1 signalling, in addition to the known induction of ATM/ATR. In contrast, HU-induced replicative stress mediated temporally dynamic regulation, with phosphorylated RelA binding partners having roles in rRNA/mRNA processing and translational initiation, many of which contained a 14-3-3ε binding motif, and were putative substrates of the dual specificity kinase CLK1. Our data thus point to differential regulation of key cellular processes and the involvement of distinct signalling pathways in modulating DNA damage-specific functions of RelA.
Insights
Different DNA damage types trigger distinct RelA phosphorylation patterns, affecting cellular responses. Etoposide (ETO) causes rapid DNA repair signaling, while hydroxyurea (HU) induces dynamic regulation of RNA processing and translation.
Area of Science:
- Molecular Biology
- Cellular Signaling
- Genomics
Background:
- DNA damage response pathways are crucial for cell survival.
- Nuclear factor-kappa B (NF-κB) transcription factor RelA plays a central role in these pathways.
- Understanding how different DNA damaging agents induce distinct cellular outcomes via RelA is essential.
Purpose of the Study:
- To investigate the temporal phosphorylation changes of RelA and its binding partners upon exposure to etoposide (ETO) and hydroxyurea (HU).
- To elucidate the coordinated signaling mechanisms that mediate distinct cellular outcomes through RelA in response to different DNA damaging agents.
Main Methods:
- Label-free quantitative phosphoproteomics was employed.
- U2OS cells were exposed to etoposide (ETO) or hydroxyurea (HU).
- The phosphorylation status of RelA and its protein binding partners was monitored over time.
Main Results:
- Subtle yet significant changes in RelA interactome phosphorylation states were observed, varying by DNA damage type and duration.
- ETO-induced DNA double-strand breaks (DSBs) led to rapid, sustained responses involving transcription, cell division, and DSB repair.
- HU-induced replicative stress resulted in dynamic regulation of RNA processing and translational initiation pathways, involving 14-3-3ε and CLK1.
- Kinase substrate prediction suggested ETO impacts CDK and ERK1 signaling, alongside ATM/ATR induction, while HU impacts CLK1.
Conclusions:
- Differential regulation of cellular processes and distinct signaling pathways modulate RelA's DNA damage-specific functions.
- The study reveals nuanced, stimulus-specific signaling events downstream of RelA activation.
- These findings contribute to a deeper understanding of DNA damage response heterogeneity.
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