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Updated: Jul 29, 2026

Two- and Three-Dimensional Live Cell Imaging of DNA Damage Response Proteins
Published on: September 28, 2012
Determination of cell fate by c-Abl activation in the response to DNA damage
S Kharbanda1, Z M Yuan, R Weichselbaum
1Dana-Farber Cancer Institute, Harvard Medical School, Boston, Massachusetts 02115, USA.
Abstract:
The cellular response to DNA damage includes growth arrest and activation of DNA repair. Certain insights into how DNA damage is converted into intracellular signals that control the genotoxic stress response have been derived from the finding that the c-Abl protein tyrosine kinase is activated by ionizing radiation and other DNA-damaging agents. c-Abl associates with the DNA-dependent protein kinase (DNA-PK) and is activated by DNA-PK-dependent phosphorylation. The ataxia telangiectasia mutated (ATM) gene product also contributes to c-Abl activation. The demonstration that c-Abl binds to p53, induces the transactivation function of p53 and activates p21 expression has supported involvement of c-Abl in regulation of the p53-dependent G1 arrest response. Interaction between c-Abl and the Rad51 protein has also provided support for involvement of c-Abl in recombinational repair of DNA strand breaks. Defects in G1 arrest and repair predispose to replication of damaged templates and, in the event of irreparable DNA lesions, induction of apoptosis. The available evidence indicates that c-Abl effects a proapoptotic function by a mechanism largely independent of p53. c-Abl also functions as an upstream effector of the proapoptotic JNK/SAPK and p38 MAPK pathways. In addition, c-Abl-dependent inhibition of PI 3-kinase contributes to the induction of apoptosis. The findings thus suggest that, in response to genotoxic stress, c-Abl functions in determining cell fate, that is growth arrest and repair or induction of apoptosis. The physiologic function of c-Abl may reside in control of the cellular response to DNA strand breaks that occur during DNA replication, genetic recombination and gene rearrangements.
Insights
The c-Abl protein tyrosine kinase plays a key role in the cellular response to DNA damage, influencing both DNA repair and apoptosis. It helps regulate cell fate decisions following genotoxic stress.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Cellular responses to DNA damage involve growth arrest and DNA repair.
- The c-Abl protein tyrosine kinase (PTK) is activated by DNA-damaging agents, providing insights into genotoxic stress signaling.
- c-Abl interacts with DNA-PK and ATM, key regulators of DNA damage response.
Purpose of the Study:
- To elucidate the role of c-Abl in the cellular response to DNA damage.
- To understand how c-Abl influences cell fate decisions, including growth arrest, DNA repair, and apoptosis.
- To investigate the molecular mechanisms underlying c-Abl's pro-apoptotic functions.
Main Methods:
- Investigating the association of c-Abl with DNA-PK and ATM.
- Analyzing c-Abl's interaction with p53 and its effect on p53-dependent gene expression (e.g., p21).
- Examining c-Abl's interaction with Rad51 to assess its role in DNA repair.
Main Results:
- c-Abl binds to p53, enhancing its transactivation function and activating p21 expression, linking it to G1 arrest.
- c-Abl interacts with Rad51, suggesting a role in recombinational DNA repair.
- c-Abl promotes apoptosis independently of p53, acting upstream of JNK/SAPK and p38 MAPK pathways, and inhibiting PI 3-kinase.
Conclusions:
- c-Abl acts as a critical regulator of cellular fate following genotoxic stress, directing cells towards either growth arrest/repair or apoptosis.
- The findings highlight c-Abl's multifaceted role in managing DNA strand breaks during replication, recombination, and gene rearrangement.
- c-Abl's pro-apoptotic activity, largely independent of p53, underscores its significance in eliminating damaged cells.
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