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The regulation of the DNA damage response at telomeres: focus on kinases
Michela Galli1, Chiara Frigerio1, Maria Pia Longhese1
1Dipartimento di Biotecnologie e Bioscienze, Università di Milano-Bicocca, Piazza della Scienza 2, Milano 20126, Italy.
Abstract:
The natural ends of linear chromosomes resemble those of accidental double-strand breaks (DSBs). DSBs induce a multifaceted cellular response that promotes the repair of lesions and slows down cell cycle progression. This response is not elicited at chromosome ends, which are organized in nucleoprotein structures called telomeres. Besides counteracting DSB response through specialized telomere-binding proteins, telomeres also prevent chromosome shortening. Despite of the different fate of telomeres and DSBs, many proteins involved in the DSB response also localize at telomeres and participate in telomere homeostasis. In particular, the DSB master regulators Tel1/ATM and Mec1/ATR contribute to telomere length maintenance and arrest cell cycle progression when chromosome ends shorten, thus promoting a tumor-suppressive process known as replicative senescence. During senescence, the actions of both these apical kinases and telomere-binding proteins allow checkpoint activation while bulk DNA repair activities at telomeres are still inhibited. Checkpoint-mediated cell cycle arrest also prevents further telomere erosion and deprotection that would favor chromosome rearrangements, which are known to increase cancer-associated genome instability. This review summarizes recent insights into functions and regulation of Tel1/ATM and Mec1/ATR at telomeres both in the presence and in the absence of telomerase, focusing mainly on discoveries in budding yeast.
Insights
Telomeres and double-strand breaks (DSBs) share DNA repair proteins. Master regulators Tel1/ATM and Mec1/ATR maintain telomere length and promote cell cycle arrest, preventing cancer genome instability.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Chromosome ends (telomeres) differ from DNA double-strand breaks (DSBs) but share repair proteins.
- Telomeres prevent chromosome shortening and illicit a unique response compared to DSBs.
- Telomere homeostasis is crucial for genome stability and preventing cancer.
Purpose of the Study:
- To review the functions and regulation of Tel1/ATM and Mec1/ATR at telomeres.
- To explore their roles in telomere length maintenance and cell cycle control.
- To highlight discoveries in budding yeast regarding telomere homeostasis and cancer prevention.
Main Methods:
- Review of existing literature on telomere biology and DNA damage response.
- Focus on the roles of Tel1/ATM and Mec1/ATR kinases.
- Analysis of studies in budding yeast (Saccharomyces cerevisiae).
Main Results:
- Tel1/ATM and Mec1/ATR are key regulators of telomere length maintenance.
- These kinases arrest cell cycle progression at shortened telomeres, inducing replicative senescence.
- Checkpoint activation at telomeres prevents further erosion and genomic instability.
Conclusions:
- Telomere-bound kinases Tel1/ATM and Mec1/ATR are essential for preventing chromosome end-to-end fusions.
- Replicative senescence, driven by these kinases, acts as a tumor-suppressive mechanism.
- Understanding telomere regulation by these proteins is vital for cancer research.
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