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Surviving chromosome replication: the many roles of the S-phase checkpoint pathway
Karim Labib1, Giacomo De Piccoli
1Paterson Institute for Cancer Research, University of Manchester, Wilmslow Road, Manchester M20 4BX, UK. klabib@picr.man.ac.uk
Abstract:
Checkpoints were originally identified as signalling pathways that delay mitosis in response to DNA damage or defects in chromosome replication, allowing time for DNA repair to occur. The ATR (ataxia- and rad-related) and ATM (ataxia-mutated) protein kinases are recruited to defective replication forks or to sites of DNA damage, and are thought to initiate the DNA damage response in all eukaryotes. In addition to delaying cell cycle progression, however, the S-phase checkpoint pathway also controls chromosome replication and DNA repair pathways in a highly complex fashion, in order to preserve genome integrity. Much of our understanding of this regulation has come from studies of yeasts, in which the best-characterized targets are the stimulation of ribonucleotide reductase activity by multiple mechanisms, and the inhibition of new initiation events at later origins of DNA replication. In addition, however, the S-phase checkpoint also plays a more enigmatic and apparently critical role in preserving the functional integrity of defective replication forks, by mechanisms that are still understood poorly. This review considers some of the key experiments that have led to our current understanding of this highly complex pathway.
Insights
The S-phase checkpoint pathway, involving ATR and ATM kinases, delays mitosis for DNA repair. It also regulates replication and DNA repair to maintain genome integrity, with poorly understood roles in replication fork stability.
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Cell cycle checkpoints delay mitosis in response to DNA damage or replication defects.
- ATR (ataxia- and rad-related) and ATM (ataxia-mutated) kinases initiate DNA damage response.
- The S-phase checkpoint pathway is crucial for preserving genome integrity.
Purpose of the Study:
- To review key experiments understanding the complex S-phase checkpoint pathway.
- To highlight the role of ATR and ATM kinases in DNA damage response.
- To discuss the regulation of chromosome replication and DNA repair.
Main Methods:
- Review of existing literature and experimental studies.
- Analysis of yeast genetics and molecular biology findings.
- Focus on signaling pathways and protein kinase functions.
Main Results:
- S-phase checkpoint stimulates ribonucleotide reductase activity.
- It inhibits initiation events at later replication origins.
- The pathway plays a critical, poorly understood role in maintaining replication fork integrity.
Conclusions:
- The S-phase checkpoint is a complex pathway essential for genome stability.
- ATR and ATM kinases are central to the DNA damage response.
- Further research is needed to elucidate the mechanisms preserving replication fork function.
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