Role of c-Abl Kinase in DNA Mismatch Repair-dependent G2 Cell Cycle Checkpoint Arrest Responses
Role of c-Abl Kinase in DNA Mismatch Repair-dependent G2 Cell Cycle Checkpoint Arrest Responses
Current published data suggest that DNA mismatch repair (MMR) triggers prolonged G(2) cell cycle checkpoint arrest after alkylation damage from N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) by activating ATR (ataxia telangiectasia-Rad3-related kinase). However, analyses of isogenic MMR-proficient and MMR-deficient human RKO colon cancer cells revealed that although ATR/Chk1 signaling controlled G(2) arrest in MMR-deficient cells, ATR/Chk1 activation was not involved in MMR-dependent G(2) arrest. Instead, we discovered that disrupting c-Abl activity using STI571 (Gleevec, a c-Abl inhibitor) or stable c-Abl knockdown abolished MMR-dependent p73alpha stabilization, induction of GADD45alpha protein expression, and G(2) arrest. In addition, inhibition of c-Abl also increased the survival of MNNG-exposed MMR-proficient cells to a level comparable with MMR-deficient cells. Furthermore, knocking down GADD45alpha (but not p73alpha) protein levels affected MMR-dependent G(2) arrest responses. Thus, MMR-dependent G(2) arrest responses triggered by MNNG are dependent on a human MLH1/c-Abl/GADD45alpha signaling pathway and activity. Furthermore, our data suggest that caution should be taken with therapies targeting c-Abl kinase because increased survival of mutator phenotypes may be an unwanted consequence.
- The University of Texas System United States
- The University of Texas Southwestern Medical Center United States
- The University of Texas MD Anderson Cancer Center United States
- Harold C. Simmons Comprehensive Cancer Center United States
- Case Western Reserve University United States
G2 Phase, Methylnitronitrosoguanidine, DNA Repair, Dose-Response Relationship, Drug, Base Pair Mismatch, Cell Cycle, Nuclear Proteins, Antineoplastic Agents, Cell Cycle Proteins, Models, Biological, Piperazines, Pyrimidines, Cell Line, Tumor, Benzamides, Colonic Neoplasms, Imatinib Mesylate, Humans, Proto-Oncogene Proteins c-abl, Signal Transduction
G2 Phase, Methylnitronitrosoguanidine, DNA Repair, Dose-Response Relationship, Drug, Base Pair Mismatch, Cell Cycle, Nuclear Proteins, Antineoplastic Agents, Cell Cycle Proteins, Models, Biological, Piperazines, Pyrimidines, Cell Line, Tumor, Benzamides, Colonic Neoplasms, Imatinib Mesylate, Humans, Proto-Oncogene Proteins c-abl, Signal Transduction
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