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DNA damage triggers Atm- and/or Atr-dependent signaling pathways to control cell cycle progression, apoptosis, and DNA repair. However, how Atm and Atr are activated is not fully understood. One of the downstream targets of Atm is non-receptor tyrosine kinase c-Abl, which is phosphorylated and activated by Atm. The current view is that c-Abl relays pro-apoptotic signals from Atm to p73 and p53. Here we show that c-Abl deficiency resulted in a broad spectrum of defects in cell response to genotoxic stress, including activation of Chk1 and Chk2, activation of p53, nuclear foci formation, apoptosis, and DNA repair, suggesting that c-Abl might also act upstream of the DNA damage-activated signaling cascades in addition to its role in p73 and p53 regulation. Indeed, we found that c-Abl is required for proper activation of both Atm and Atr. c-Abl is bound to the chromatin and shows enhanced interaction with Atm and Atr in response to DNA damage. c-Abl can phosphorylate Atr on Y291 and Y310 and this phosphorylation appears to have a positive role in Atr activation under genotoxic stress. These findings suggest that Atm-mediated c-Abl activation in cell response to double-stranded DNA breaks might facilitate the activation of both Atm and Atr to regulate their downstream cellular events.
570, 572, DNA Repair, Knockout, Doxorubicin - Pharmacology, DNA repair, Apoptosis, Cell Cycle Proteins, Ataxia Telangiectasia Mutated Proteins, Protein Serine-Threonine Kinases, c-Abl, Protein-Serine-Threonine Kinases - Metabolism, Antineoplastic - Pharmacology, Cell Line, Dna Repair, Double-Stranded, Mice, Dna Breaks, Antibiotics, Dna Breaks, Double-Stranded, Animals, DNA Breaks, Double-Stranded, Phosphorylation, Fibroblasts - Metabolism, Mice, Knockout, Antibiotics, Antineoplastic, phosphorylation, Nuclear Proteins, Fibroblasts, Proto-Oncogene Proteins C-Abl - Genetics - Metabolism - Physiology, DNA-Binding Proteins, Checkpoint Kinase 2, Atr, Dna Damage, Doxorubicin, Atm, Checkpoint Kinase 1, Antibiotics, Antineoplastic - Pharmacology, Protein Kinases - Metabolism, Nuclear Proteins - Metabolism, Dna-Binding Proteins - Metabolism, Cell Cycle Proteins - Metabolism, Protein Kinases, Tumor Suppressor Protein P53 - Metabolism, Tumor Suppressor Proteins - Metabolism, DNA Damage
570, 572, DNA Repair, Knockout, Doxorubicin - Pharmacology, DNA repair, Apoptosis, Cell Cycle Proteins, Ataxia Telangiectasia Mutated Proteins, Protein Serine-Threonine Kinases, c-Abl, Protein-Serine-Threonine Kinases - Metabolism, Antineoplastic - Pharmacology, Cell Line, Dna Repair, Double-Stranded, Mice, Dna Breaks, Antibiotics, Dna Breaks, Double-Stranded, Animals, DNA Breaks, Double-Stranded, Phosphorylation, Fibroblasts - Metabolism, Mice, Knockout, Antibiotics, Antineoplastic, phosphorylation, Nuclear Proteins, Fibroblasts, Proto-Oncogene Proteins C-Abl - Genetics - Metabolism - Physiology, DNA-Binding Proteins, Checkpoint Kinase 2, Atr, Dna Damage, Doxorubicin, Atm, Checkpoint Kinase 1, Antibiotics, Antineoplastic - Pharmacology, Protein Kinases - Metabolism, Nuclear Proteins - Metabolism, Dna-Binding Proteins - Metabolism, Cell Cycle Proteins - Metabolism, Protein Kinases, Tumor Suppressor Protein P53 - Metabolism, Tumor Suppressor Proteins - Metabolism, DNA Damage
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 90 | |
popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Top 10% | |
influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Top 10% | |
impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Top 10% |