UV-induced replication arrest in the xeroderma pigmentosum variant leads to DNA double-strand breaks, γ-H2AX formation, and Mre11 relocalization
- 26 December 2001
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 99 (1) , 233-238
- https://doi.org/10.1073/pnas.231611798
Abstract
UV-induced replication arrest in the xeroderma pigmentosum variant (XPV) but not in normal cells leads to an accumulation of the Mre11/Rad50/Nbs1 complex and phosphorylated histone H2AX (gamma-H2AX) in large nuclear foci at sites of stalled replication forks. These complexes have been shown to signal the presence of DNA damage, in particular, double-strand breaks (DSBs). This finding suggests that UV damage leads to the formation of DSBs during the course of replication arrest. After UV irradiation, XPV cells showed a fluence-dependent increase in the yield of gamma-H2AX foci that paralleled the production of Mre11 foci. The percentage of foci-positive cells increased rapidly (10-15%) up to fluences of 10 J.(-2) before saturating at higher fluences. Frequencies of gamma-H2AX and Mre11 foci both reached maxima at 4 h after UV irradiation. This pattern contrasts sharply to the situation observed after x-irradiation, where peak levels of gamma-H2AX foci were found to precede the formation of Mre11 foci by several hours. The nuclear distributions of gamma-H2AX and Mre11 were found to colocalize spatially after UV- but not x-irradiation. UV-irradiated XPV cells showed a one-to-one correspondence between Mre11 and gamma-H2AX foci-positive cells. These results show that XPV cells develop DNA DSBs during the course of UV-induced replication arrest. These UV-induced foci occur in cells that are unable to carry out efficient bypass replication of UV damage and may contribute to further genetic variation.Keywords
This publication has 71 references indexed in Scilit:
- DNA double-strand breaks associated with replication forks are predominantly repaired by homologous recombination involving an exchange mechanism in mammalian cells11Edited by J. KarnJournal of Molecular Biology, 2001
- The recombination–replication interfaceTrends in Biochemical Sciences, 2000
- Stopping DNA Replication in Its TracksScience, 1999
- Analysis of DNA replication forks encountering a pyrimidine dimer in the template to the leading strandJournal of Molecular Biology, 1999
- The 3′ to 5′ Exonuclease Activity of Mre11 Facilitates Repair of DNA Double-Strand BreaksPublished by Elsevier ,1998
- Replication Fork Bypass of a Pyrimidine Dimer Blocking Leading Strand DNA SynthesisJournal of Biological Chemistry, 1997
- Isolation and Characterization of the Human MRE11 HomologueGenomics, 1995
- Cell checkpoint and radiosensitivityNature, 1993
- Mechanisms of inhibition of DNA replication by ultraviolet light in normal human and xeroderma pigmentosum fibroblastsJournal of Molecular Biology, 1981
- Xeroderma Pigmentosum: Variants with Normal Dna Repair and Normal Sensitivity to Ultraviolet LightJournal of Investigative Dermatology, 1972