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Published on: June 25, 2013
Saccharomyces cerevisiae Rad9 acts as a Mec1 adaptor to allow Rad53 activation
Frédéric D Sweeney1, Feng Yang, An Chi
1Centre for Systems Biology, Samuel Lunenfeld Research Institute, Mount Sinai Hospital, 600 University Avenue, Toronto, Ontario, M5G 1X5, Canada.
Background:
The DNA damage checkpoint is a protein kinase-based signaling system that detects and signals physical alterations in DNA. Despite having identified many components of this signaling cascade, the exact mechanisms by which checkpoint kinases are activated after DNA damage, as well as the role of the checkpoint mediators, remain poorly understood.
Results:
To elucidate the mechanisms that underlie the MEC1 and RAD9-dependent activation of Rad53, the Saccharomyces cerevisiae ortholog of Chk2, we mapped and characterized in vivo phosphorylation sites present on Rad53 after DNA damage by mass spectrometry. We find that Rad53 requires for its activation multisite phosphorylation on a number of typical and atypical Mec1 phosphorylation sites, thus confirming that Rad53 is a direct target of Mec1, the mammalian ATR homolog. Moreover, by using biochemical reconstitution experiments, we demonstrate that efficient and direct phosphorylation of Rad53 by Mec1 is only observed in the presence of purified Rad9, the archetypal checkpoint mediator. We find that the stimulatory activity of Rad9 requires a phospho- and FHA-dependent interaction with Rad53, which allows Rad53 to be recognized as a substrate for Mec1.
Conclusions:
Our results indicate that Rad9 acts as a bona fide signaling adaptor that enables Rad53 phosphorylation by Mec1. Given the high degree of conservation of checkpoint signaling in eukaryotes, we propose that one of the critical functions of checkpoint mediators such as MDC1, 53BP1, or Brca1 is to act as PIKK adaptors during the DNA damage response.
Insights
The DNA damage checkpoint uses mediators like Rad9 to help activate Rad53, a key protein. This adaptor function is crucial for DNA repair signaling in cells.
Area of Science:
- Cellular biology
- Molecular genetics
- Biochemistry
Background:
- The DNA damage checkpoint is a critical signaling pathway involving protein kinases that respond to DNA alterations.
- The precise activation mechanisms of checkpoint kinases and the roles of mediators are not fully understood.
Purpose of the Study:
- To investigate the mechanisms of Rad53 activation, focusing on the roles of Mec1 and Rad9.
- To characterize Rad53 phosphorylation sites and its interaction with checkpoint mediators.
Main Methods:
- Mass spectrometry to map in vivo phosphorylation sites on Rad53 after DNA damage.
- Biochemical reconstitution experiments to study Rad53 phosphorylation by Mec1 in the presence of Rad9.
Main Results:
- Rad53 activation requires multisite phosphorylation at Mec1 sites, confirming Rad53 as a direct Mec1 target.
- Rad9 is essential for efficient Rad53 phosphorylation by Mec1.
- Rad9's stimulatory activity depends on a phospho- and FHA-dependent interaction with Rad53, facilitating its recognition as a substrate.
Conclusions:
- Rad9 functions as a signaling adaptor, enabling Mec1-mediated Rad53 phosphorylation.
- Checkpoint mediators likely act as PIKK adaptors in the DNA damage response, a conserved mechanism across eukaryotes.
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