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ATM-dependent ERK signaling via AKT in response to DNA double-strand breaks
Ashraf Khalil1, Rhiannon N Morgan, Bret R Adams
1Department of Radiation Oncology, Virginia Commonwealth University, Richmond, VA, USA.
Abstract:
Ionizing radiation (IR) triggers many signaling pathways primarily originating from either damaged DNA or non-nuclear sources such as growth factor receptors. Thus, to study the DNA damage-induced signaling component alone by irradiation would be a challenge. To generate DNA double-strand breaks (DSBs) and minimize non-nuclear signaling, human cancer cells having bromodeoxyuridine (BrdU) - substituted DNA were treated with the photosensitizer Hoechst 33258 followed by long wavelength UV (UV-A) treatment (BrdU photolysis). BrdU photolysis resulted in well-controlled, dose- dependent generation of DSBs equivalent to radiation doses between 0.2 - 20 Gy, as determined by pulsed-field gel electrophoresis, and accompanied by dose-dependent ATM (ser-1981), H2AX (ser-139), Chk2 (thr-68), and p53 (ser-15) phosphorylation. Interestingly, low levels (≤ 2 Gy equivalents) of BrdU photolysis stimulated ERK phosphorylation whereas higher (> 2 Gy eq.) resulted in ERK dephosphorylation. ERK phosphorylation was ATM-dependent whereas dephosphorylation was ATM-independent. The ATM-dependent increase in ERK phosphorylation was also seen when DSBs were generated by transfection of cells with an EcoRI expression plasmid or by electroporation of EcoRI enzyme. Furthermore, AKT was critical for transmitting the DSB signal to ERK. Altogether, our results show that low levels of DSBs trigger ATM- and AKT-dependent ERK pro-survival signaling and increased cell proliferation whereas higher levels result in ERK dephosphorylation consistent with a dose-dependent switch from pro-survival to anti-survival signaling.
Insights
DNA double-strand breaks (DSBs) trigger distinct signaling pathways. Low DSB levels activate ATM- and AKT-dependent ERK pro-survival signaling, while high levels induce ERK dephosphorylation, switching to anti-survival signaling.
Area of Science:
- Cellular signaling
- DNA damage response
- Radiation biology
Background:
- Ionizing radiation (IR) activates complex signaling pathways.
- Distinguishing DNA damage-induced signaling from other pathways is challenging.
- A method to specifically induce DNA double-strand breaks (DSBs) is needed.
Purpose of the Study:
- To develop a method for generating DNA double-strand breaks (DSBs) with minimal non-nuclear signaling.
- To investigate the dose-dependent signaling responses to DSBs, particularly ERK phosphorylation.
- To elucidate the roles of ATM and AKT in DSB-induced signaling.
Main Methods:
- Bromodeoxyuridine (BrdU) photolysis was used to induce DSBs in human cancer cells.
- Pulsed-field gel electrophoresis quantified DSB levels.
- Western blotting assessed phosphorylation of ATM, H2AX, Chk2, p53, ERK, and AKT.
Main Results:
- BrdU photolysis generated dose-dependent DSBs (0.2-20 Gy equivalents) and induced phosphorylation of ATM, H2AX, Chk2, and p53.
- Low DSB levels (≤ 2 Gy eq.) stimulated ATM-dependent ERK phosphorylation, while higher levels (> 2 Gy eq.) caused ATM-independent ERK dephosphorylation.
- AKT signaling was essential for transmitting DSB signals to ERK.
Conclusions:
- BrdU photolysis provides a controlled method to study DSB-induced signaling.
- Low DSB levels promote cell survival and proliferation via ATM/AKT-dependent ERK activation.
- High DSB levels induce a switch to anti-survival signaling through ERK dephosphorylation.
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