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Published on: November 5, 2012
Separable roles for Mec1/ATR in genome maintenance, DNA replication, and checkpoint signaling
Michael Charles Lanz1, Susannah Oberly1, Ethan James Sanford1
1Department of Molecular Biology and Genetics, Weill Institute for Cell and Molecular Biology, Cornell University, Ithaca, New York 14853, USA.
Abstract:
The Mec1/ATR kinase coordinates multiple cellular responses to replication stress. In addition to its canonical role in activating the checkpoint kinase Rad53, Mec1 also plays checkpoint-independent roles in genome maintenance that are not well understood. Here we used a combined genetic-phosphoproteomic approach to manipulate Mec1 activation and globally monitor Mec1 signaling, allowing us to delineate distinct checkpoint-independent modes of Mec1 action. Using cells in which endogenous Mec1 activators were genetically ablated, we found that expression of "free" Mec1 activation domains (MADs) can robustly activate Mec1 and rescue the severe DNA replication and growth defects of these cells back to wild-type levels. However, unlike the activation mediated by endogenous activator proteins, "free" MADs are unable to stimulate Mec1-mediated suppression of gross chromosomal rearrangements (GCRs), revealing that Mec1's role in genome maintenance is separable from a previously unappreciated proreplicative function. Both Mec1's functions in promoting replication and suppressing GCRs are independent of the downstream checkpoint kinases. Additionally, Mec1-dependent GCR suppression seems to require localized Mec1 action at DNA lesions, which correlates with the phosphorylation of activator-proximal substrates involved in homologous recombination-mediated DNA repair. These findings establish that Mec1 initiates checkpoint signaling, promotes DNA replication, and maintains genetic stability through distinct modes of action.
Insights
The Mec1/ATR kinase has distinct roles in DNA replication and genome stability. Researchers found that Mec1 activation domains can promote replication but not suppress chromosomal rearrangements, revealing separable functions.
Area of Science:
- Cellular biology
- Molecular genetics
- DNA replication and repair
Background:
- Mec1/ATR kinase is crucial for coordinating cellular responses to replication stress.
- While its role in activating Rad53 is known, Mec1's checkpoint-independent functions in genome maintenance are less understood.
Purpose of the Study:
- To delineate distinct checkpoint-independent modes of Mec1 action using a combined genetic-phosphoproteomic approach.
- To investigate the separable roles of Mec1 in DNA replication and genome stability.
Main Methods:
- Genetic manipulation to ablate endogenous Mec1 activators.
- Expression of "free" Mec1 activation domains (MADs) to activate Mec1.
- Global phosphoproteomic analysis to monitor Mec1 signaling.
Main Results:
- "Free" MADs robustly activated Mec1 and rescued DNA replication and growth defects.
- "Free" MADs failed to stimulate Mec1-mediated suppression of gross chromosomal rearrangements (GCRs).
- Mec1's pro-replicative function is separable from its role in suppressing GCRs, and both are independent of downstream checkpoint kinases.
Conclusions:
- Mec1 initiates checkpoint signaling, promotes DNA replication, and maintains genetic stability through distinct modes of action.
- Mec1-dependent GCR suppression requires localized action at DNA lesions, linked to homologous recombination.
- Findings reveal a previously unappreciated pro-replicative function of Mec1.
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