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Author Spotlight: Investigating the Motion Dynamics of the Eukaryotic Replisome Components at the Single-Molecule Level
Published on: July 26, 2024
Phosphorylation of CMG helicase and Tof1 is required for programmed fork arrest
Deepak Bastia1, Pankaj Srivastava2, Shamsu Zaman2
1Department of Biochemistry and Molecular Biology, Medical University of South Carolina, Charleston, SC 29415; bastia@musc.edu odonnel@rockefeller.edu.
Abstract:
Several important physiological transactions, including control of replicative life span (RLS), prevention of collision between replication and transcription, and cellular differentiation, require programmed replication fork arrest (PFA). However, a general mechanism of PFA has remained elusive. We previously showed that the Tof1-Csm3 fork protection complex is essential for PFA by antagonizing the Rrm3 helicase that displaces nonhistone protein barriers that impede fork progression. Here we show that mutations of Dbf4-dependent kinase (DDK) of Saccharomyces cerevisiae, but not other DNA replication factors, greatly reduced PFA at replication fork barriers in the spacer regions of the ribosomal DNA array. A key target of DDK is the mini chromosome maintenance (Mcm) 2-7 complex, which is known to require phosphorylation by DDK to form an active CMG [Cdc45 (cell division cycle gene 45), Mcm2-7, GINS (Go, Ichi, Ni, and San)] helicase. In vivo experiments showed that mutational inactivation of DDK caused release of Tof1 from the chromatin fractions. In vitro binding experiments confirmed that CMG and/or Mcm2-7 had to be phosphorylated for binding to phospho-Tof1-Csm3 but not to its dephosphorylated form. Suppressor mutations that bypass the requirement for Mcm2-7 phosphorylation by DDK restored PFA in the absence of the kinase. Retention of Tof1 in the chromatin fraction and PFA in vivo was promoted by the suppressor mcm5-bob1, which bypassed DDK requirement, indicating that under this condition a kinase other than DDK catalyzed the phosphorylation of Tof1. We propose that phosphorylation regulates the recruitment and retention of Tof1-Csm3 by the replisome and that this complex antagonizes the Rrm3 helicase, thereby promoting PFA, by preserving the integrity of the Fob1-Ter complex.
Insights
Programmed replication fork arrest (PFA) is crucial for cell functions. Dbf4-dependent kinase (DDK) regulates PFA by phosphorylating the Mcm2-7 complex, influencing Tof1-Csm3 binding and fork stability.
Area of Science:
- Molecular Biology
- Cell Biology
- Genetics
Background:
- Programmed replication fork arrest (PFA) is vital for DNA replication, transcription, and cell differentiation.
- The Tof1-Csm3 complex antagonizes the Rrm3 helicase to facilitate PFA, but the general mechanism remained unclear.
- Dbf4-dependent kinase (DDK) is implicated in DNA replication regulation.
Purpose of the Study:
- To elucidate the general mechanism of programmed replication fork arrest (PFA).
- To investigate the role of Dbf4-dependent kinase (DDK) in PFA.
- To understand how DDK regulates the Tof1-Csm3 fork protection complex.
Main Methods:
- Investigated the effect of DDK mutations on PFA in Saccharomyces cerevisiae.
- Analyzed the interaction between DDK, Mcm2-7 complex, and Tof1-Csm3.
- Utilized in vivo and in vitro binding experiments to assess protein interactions and phosphorylation status.
Main Results:
- DDK mutations significantly reduced PFA at ribosomal DNA replication fork barriers.
- DDK targets the Mcm2-7 complex for phosphorylation, which is essential for CMG helicase activity.
- Phosphorylation of Mcm2-7 by DDK is required for Tof1-Csm3 binding to chromatin, promoting PFA.
Conclusions:
- DDK-mediated phosphorylation of Mcm2-7 regulates Tof1-Csm3 recruitment and retention at replication forks.
- This phosphorylation event is critical for antagonizing Rrm3 helicase and ensuring PFA.
- The findings reveal a key regulatory mechanism for PFA, essential for genomic stability and cellular processes.
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