Excess MCM proteins protect human cells from replicative stress by licensing backup origins of replication
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- 1 July 2008
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 105 (26) , 8956-8961
- https://doi.org/10.1073/pnas.0803978105
Abstract
The six main minichromosome maintenance proteins (Mcm2–7), which presumably constitute the core of the replicative DNA helicase, are present in chromatin in large excess relative to the number of active replication forks. To evaluate the relevance of this apparent surplus of Mcm2–7 complexes in human cells, their levels were down-regulated by using RNA interference. Interestingly, cells continued to proliferate for several days after the acute (>90%) reduction of Mcm2–7 concentration. However, they became hypersensitive to DNA replication stress, accumulated DNA lesions, and eventually activated a checkpoint response that prevented mitotic division. When this checkpoint was abrogated by the addition of caffeine, cells quickly lost viability, and their karyotypes revealed striking chromosomal aberrations. Single-molecule analyses revealed that cells with a reduced concentration of Mcm2–7 complexes display normal fork progression but have lost the potential to activate “dormant” origins that serve a backup function during DNA replication. Our data show that the chromatin-bound “excess” Mcm2–7 complexes play an important role in maintaining genomic integrity under conditions of replicative stress.Keywords
This publication has 33 references indexed in Scilit:
- Chk1 regulates the density of active replication origins during the vertebrate S phaseThe EMBO Journal, 2007
- Replication foci dynamics: replication patterns are modulated by S-phase checkpoint kinases in fission yeastThe EMBO Journal, 2007
- Cdc45-MCM-GINS, a new power player for DNA replicationCell Division, 2006
- Isolation of the Cdc45/Mcm2–7/GINS (CMG) complex, a candidate for the eukaryotic DNA replication fork helicaseProceedings of the National Academy of Sciences, 2006
- The DNA replication factor MCM5 is essential for Stat1-mediated transcriptional activationProceedings of the National Academy of Sciences, 2005
- The role of Cdc6 in ensuring complete genome licensing and S phase checkpoint activationThe Journal of cell biology, 2004
- Perpetuating the double helix: molecular machines at eukaryotic DNA replication originsBioEssays, 2003
- Replication protein A-mediated recruitment and activation of Rad17 complexesProceedings of the National Academy of Sciences, 2003
- Paradoxes of eukaryotic DNA replication: MCM proteins and the random completion problemBioEssays, 2003
- A rotary pumping model for helicase function of MCM proteins at a distance from replication forksEMBO Reports, 2003