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Updated: May 28, 2026

Analysis of Translation Initiation During Stress Conditions by Polysome Profiling
Published on: May 19, 2014
Phosphorylation of SRSF1 is modulated by replicational stress
Valentina Leva1, Serena Giuliano, Anna Bardoni
1Istituto di Genetica Molecolare, Consiglio Nazionale delle Ricerche, 27100 Pavia, Italy.
Abstract:
DNA ligase I-deficient 46BR.1G1 cells show a delay in the maturation of replicative intermediates resulting in the accumulation of single- and double-stranded DNA breaks. As a consequence the ataxia telangiectasia mutated protein kinase (ATM) is constitutively phosphorylated at a basal level. Here, we use 46BR.1G1 cells as a model system to study the cell response to chronic replication-dependent DNA damage. Starting from a proteomic approach, we demonstrate that the phosphorylation level of factors controlling constitutive and alternative splicing is affected by the damage elicited by DNA ligase I deficiency. In particular, we show that SRSF1 is hyperphosphorylated in 46BR.1G1 cells compared to control fibroblasts. This hyperphosphorylation can be partially prevented by inhibiting ATM activity with caffeine. Notably, hyperphosphorylation of SRSF1 affects the subnuclear distribution of the protein and the alternative splicing pattern of target genes. We also unveil a modulation of SRSF1 phosphorylation after exposure of MRC-5V1 control fibroblasts to different exogenous sources of DNA damage. Altogether, our observations indicate that a relevant aspect of the cell response to DNA damage involves the post-translational regulation of splicing factor SRSF1 which is associated with a shift in the alternative splicing program of target genes to control cell survival or cell death.
Insights
DNA ligase I deficiency causes DNA breaks, leading to splicing factor SRSF1 hyperphosphorylation. This DNA damage response impacts alternative splicing, influencing cell survival and death pathways.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- DNA ligase I deficiency in 46BR.1G1 cells leads to DNA breaks and constitutive ATM phosphorylation.
- Chronic replication-dependent DNA damage is a significant cellular stressor.
Purpose of the Study:
- To investigate the cell's response to chronic DNA damage in DNA ligase I-deficient cells.
- To identify molecular mechanisms linking DNA damage to altered gene expression.
Main Methods:
- Proteomic analysis to assess protein phosphorylation.
- Cell culture and treatment with DNA-damaging agents.
- Western blotting and immunofluorescence to study protein localization and modification.
Main Results:
- DNA ligase I deficiency causes SRSF1 hyperphosphorylation, partially mediated by ATM.
- SRSF1 hyperphosphorylation alters its subnuclear distribution and the alternative splicing of target genes.
- Exogenous DNA damage also modulates SRSF1 phosphorylation in control cells.
Conclusions:
- Post-translational regulation of SRSF1 is a key component of the DNA damage response.
- Altered alternative splicing of SRSF1 targets contributes to cell fate decisions under DNA stress.
- This highlights a novel link between DNA repair, splicing, and cell survival pathways.
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