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Published on: June 26, 2020
ATM-dependent Phosphorylation of Nemo SQ Motifs Is Dispensable for Nemo-mediated Gene Expression Changes in Response
Rebecca A Glynn1,2, Katharina E Hayer2,3,4, Craig H Bassing1,2
1Cell and Molecular Biology Graduate Group, Perelman School of Medicine, University of Pennsylvania, Philadelphia, PA.
Abstract:
In response to DNA double-strand breaks (DSBs), the ATM kinase activates NF-κB factors to stimulate gene expression changes that promote survival and allow time for cells to repair damage. In cell lines, ATM can activate NF-κB transcription factors via two independent, convergent mechanisms. One is ATM-mediated phosphorylation of nuclear NF-κB essential modulator (Nemo) protein, which leads to monoubiquitylation and export of Nemo to the cytoplasm where it engages the IκB kinase (IKK) complex to activate NF-κB. Another is DSB-triggered migration of ATM into the cytoplasm, where it promotes monoubiquitylation of Nemo and the resulting IKK-mediated activation of NF-κB. ATM has many other functions in the DSB response beyond activation of NF-κB, and Nemo activates NF-κB downstream of diverse stimuli, including developmental or proinflammatory stimuli such as LPSs. To elucidate the in vivo role of DSB-induced, ATM-dependent changes in expression of NF-κB-responsive genes, we generated mice expressing phosphomutant Nemo protein lacking consensus SQ sites for phosphorylation by ATM or related kinases. We demonstrate that these mice are viable/healthy and fertile and exhibit overall normal B and T lymphocyte development. Moreover, treatment of their B lineage cells with LPS induces normal NF-κB-regulated gene expression changes. Furthermore, in marked contrast to results from a pre-B cell line, primary B lineage cells expressing phosphomutant Nemo treated with the genotoxic drug etoposide induce normal ATM- and Nemo-dependent changes in expression of NF-κB-regulated genes. Our data demonstrate that ATM-dependent phosphorylation of Nemo SQ motifs in vivo is dispensable for DSB-signaled changes in expression of NF-κB-regulated genes.
Insights
ATM kinase activates NF-κB for DNA repair. Phosphorylation of Nemo by ATM is not essential in vivo for DNA double-strand break (DSB) signaling to NF-κB-regulated genes.
Area of Science:
- Molecular Biology
- Cellular Biology
- Genetics
Background:
- DNA double-strand breaks (DSBs) trigger ATM kinase activation, which promotes cell survival by activating NF-κB.
- ATM can activate NF-κB through Nemo phosphorylation or cytoplasmic ATM signaling.
- The in vivo role of ATM-dependent Nemo phosphorylation in DSB response remains unclear.
Purpose of the Study:
- To investigate the in vivo significance of ATM-mediated Nemo phosphorylation in response to DSBs.
- To determine if Nemo phosphorylation by ATM is essential for activating NF-κB-responsive genes after DSBs.
Main Methods:
- Generated mice expressing a phosphomutant Nemo protein lacking ATM phosphorylation sites.
- Assessed B and T lymphocyte development in these mice.
- Stimulated B lineage cells with LPS and etoposide to analyze NF-κB-regulated gene expression.
Main Results:
- Mice with phosphomutant Nemo were viable and showed normal lymphocyte development.
- LPS stimulation induced normal NF-κB gene expression changes in B cells.
- Etoposide treatment led to normal ATM- and Nemo-dependent NF-κB gene expression changes in primary B cells, contrasting cell line data.
Conclusions:
- ATM-dependent phosphorylation of Nemo SQ motifs is dispensable for DSB-induced NF-κB-regulated gene expression in vivo.
- These findings highlight potential differences between in vitro cell line models and in vivo responses to DNA damage.
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