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Characterizing DNA Repair Processes at Transient and Long-lasting Double-strand DNA Breaks by Immunofluorescence Microscopy
Published on: June 8, 2018
ATM and DNA-PKcs make a complementary couple in DNA double strand break repair
M Martín1, M Terradas, L Tusell
1Departament de Biologia Cellular, Fisiologia i Immunologia, Edifici C-Campus de la UAB, Universitat Autònoma de Barcelona, 08193 Bellaterra (Cerdanyola del Vallès), Spain.
Abstract:
The interplay between ATM and DNA-PKcs kinases during double strand breaks (DSBs) resolution is still a matter of debate. ATM and DNA-PKcs participate differently in the DNA damage response pathway (DDR), but important common aspects are indeed found: both of them are activated when faced with DSBs, they share common targets in the DDR and the absence of either kinase results in faulty DSB repair. Absence of ATM translates into timely repair that, nevertheless, is incomplete. On the other hand, DNA-PKcs absence translates into slower repair, which in turn gives rise to the accumulation of simple and complex reorganizations. These outcomes confirm that the function of both protein kinases is essential to guarantee genome integrity. Interestingly, V(D)J and CSR recombination events provide a powerful tool to study the interplay between both kinases in DSB repair. Although the physiological DSBs generated during V(D)J and CSR recombination are resolved by the non-homologous end-joining (NHEJ) repair pathway, ATM absence during these events translates into chromosome translocations. These results suggest that NHEJ accuracy is threatened in the absence of ATM, which may play a role in avoiding illegitimate repair by favouring the joining of the correct DNA ends. Indeed, simultaneous DNA-PKcs and ATM deficiency during V(D)J and CSR recombination translates into a synergistic increase in potentially dangerous chromosomal translocations and deletions. Although the exact nature of their interaction remains elusive, the evidence indicates that ATM and DNA-PKcs play complementary roles that allow complete and legitimate DSB repair to be reached. Faithful repair can only be achieved by the presence and correct functioning of both kinases: while DNA-PKcs ensures fast rejoining, ATM guarantees complete repair.
Insights
The interplay between ATM and DNA-PKcs kinases is crucial for complete and accurate double-strand break (DSB) repair. Both kinases are essential, with DNA-PKcs ensuring fast repair and ATM guaranteeing completeness, preventing genomic instability.
Area of Science:
- Molecular Biology
- Genetics
- Cellular Biology
Background:
- ATM and DNA-PKcs are key kinases in the DNA damage response (DDR).
- Both kinases are activated by double-strand breaks (DSBs) and share common targets.
- The precise roles and interplay of ATM and DNA-PKcs in DSB repair remain under investigation.
Purpose of the Study:
- To elucidate the complementary roles of ATM and DNA-PKcs in resolving DNA double-strand breaks.
- To investigate the impact of ATM and DNA-PKcs deficiency on genome integrity during V(D)J and CSR recombination.
Main Methods:
- Analysis of DNA repair kinetics and fidelity in the absence of ATM or DNA-PKcs.
- Examination of chromosomal aberrations during V(D)J and CSR recombination in kinase-deficient cells.
Main Results:
- ATM deficiency leads to timely but incomplete DSB repair.
- DNA-PKcs deficiency results in slower repair and increased chromosomal rearrangements.
- Simultaneous deficiency of ATM and DNA-PKcs synergistically elevates chromosomal translocations and deletions during V(D)J and CSR recombination.
Conclusions:
- ATM and DNA-PKcs play essential, complementary roles in ensuring faithful and complete DSB repair.
- DNA-PKcs facilitates rapid DNA end joining, while ATM ensures the accuracy and completeness of the repair process.
- The coordinated action of both kinases is vital for maintaining genome integrity and preventing oncogenic translocations.
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