Autoinhibition and autoactivation of the DNA replication checkpoint kinase Cds1
1Program in Molecular Biology, Sloan-Kettering Institute, New York, New York 10021, USA. yong-jie.xu@wright.edu
Abstract:
Cds1 is the ortholog of Chk2 and the major effector of the DNA replication checkpoint in Schizosaccharomyces pombe. Previous studies have shown that Cds1 is activated by a two-stage mechanism. In the priming stage, the sensor kinase Rad3 and the mediator Mrc1 function to phosphorylate a threonine residue, Thr(11), in the SQ/TQ domain of Cds1. In the autoactivation stage, primed Cds1 molecules dimerize via intermolecular interactions between the phosphorylated Thr(11) in one Cds1 and the forkhead-associated domain of the other. Dimerization activates Cds1, probably by promoting autophosphorylation. To define the mechanisms for the autoactivation of primed Cds1 and the regulation of this process, we carried out genetic and biochemical studies to identify phosphorylatable residues required for checkpoint activation. Our data indicate that dimerization of Cds1 promotes trans-autophosphorylation of a number of residues in the catalytic domain, but phosphorylation of a highly conserved threonine residue (Thr(328)) in the activation loop is the only covalent modification required for kinase activation in vitro and in vivo. Autophosphorylation of Thr(328) and kinase activation in unprimed, monomeric Cds1 are strongly inhibited by the C-terminal 27-amino acid tail of the enzyme. This autoinhibitory effect may play an important role in preventing spontaneous activation of the replication checkpoint during normal cell cycles. The two-stage activation pathway and the autoinhibition mechanism, which are probably shared by other members of the Chk2 family, provide sensitivity, specificity, and noise immunity, properties required for the replication checkpoint.
Insights
The DNA replication checkpoint in yeast is activated in two stages, involving Cds1 (Chk2 ortholog) phosphorylation. Autophosphorylation of Thr328 is crucial for Cds1 activation, while a C-terminal tail prevents premature checkpoint signaling.
Area of Science:
- Cellular Biology
- Molecular Biology
- Genetics
Background:
- Cds1 is the Schizosaccharomyces pombe ortholog of Chk2 and a key regulator of the DNA replication checkpoint.
- Cds1 activation occurs via a two-stage mechanism: priming and autoactivation.
- The priming stage involves Rad3 and Mrc1 phosphorylating Thr11 on Cds1.
Purpose of the Study:
- To elucidate the mechanisms of Cds1 autoactivation.
- To identify critical phosphorylatable residues for DNA replication checkpoint activation.
- To understand the regulation of Cds1 autoactivation.
Main Methods:
- Genetic studies to identify essential residues.
- Biochemical assays to analyze phosphorylation events.
- In vitro and in vivo experiments to assess kinase activity.
Main Results:
- Dimerization of Cds1 promotes trans-autophosphorylation.
- Phosphorylation of Thr328 in the activation loop is essential for Cds1 kinase activation.
- The C-terminal tail of Cds1 inhibits autophosphorylation and kinase activation in unprimed monomers.
Conclusions:
- Thr328 phosphorylation is the sole covalent modification required for Cds1 activation.
- C-terminal autoinhibition prevents spontaneous replication checkpoint activation.
- The two-stage activation and autoinhibition mechanisms ensure checkpoint fidelity and robustness.
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