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Updated: Apr 26, 2026

Author Spotlight: Investigating the Motion Dynamics of the Eukaryotic Replisome Components at the Single-Molecule Level
Published on: July 26, 2024
A unique DNA entry gate serves for regulated loading of the eukaryotic replicative helicase MCM2-7 onto DNA
Stefan A Samel1, Alejandra Fernández-Cid1, Jingchuan Sun2
1DNA Replication Group, Institute of Clinical Science, Imperial College, London W12 0NN, United Kingdom;
Abstract:
The regulated loading of the replicative helicase minichromosome maintenance proteins 2-7 (MCM2-7) onto replication origins is a prerequisite for replication fork establishment and genomic stability. Origin recognition complex (ORC), Cdc6, and Cdt1 assemble two MCM2-7 hexamers into one double hexamer around dsDNA. Although the MCM2-7 hexamer can adopt a ring shape with a gap between Mcm2 and Mcm5, it is unknown which Mcm interface functions as the DNA entry gate during regulated helicase loading. Here, we establish that the Saccharomyces cerevisiae MCM2-7 hexamer assumes a closed ring structure, suggesting that helicase loading requires active ring opening. Using a chemical biology approach, we show that ORC-Cdc6-Cdt1-dependent helicase loading occurs through a unique DNA entry gate comprised of the Mcm2 and Mcm5 subunits. Controlled inhibition of DNA insertion triggers ATPase-driven complex disassembly in vitro, while in vivo analysis establishes that Mcm2/Mcm5 gate opening is essential for both helicase loading onto chromatin and cell cycle progression. Importantly, we demonstrate that the MCM2-7 helicase becomes loaded onto DNA as a single hexamer during ORC/Cdc6/Cdt1/MCM2-7 complex formation prior to MCM2-7 double hexamer formation. Our study establishes the existence of a unique DNA entry gate for regulated helicase loading, revealing key mechanisms in helicase loading, which has important implications for helicase activation.
Insights
Researchers identified a specific DNA entry gate in the minichromosome maintenance (MCM2-7) helicase, essential for its loading onto DNA. This finding reveals crucial mechanisms for helicase activation and genomic stability.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Regulated loading of the replicative helicase MCM2-7 onto replication origins is critical for DNA replication and genomic stability.
- The assembly of MCM2-7 hexamers into a double hexamer by ORC, Cdc6, and Cdt1 is a key step, but the DNA entry mechanism remains unclear.
Purpose of the Study:
- To determine the specific DNA entry gate used by the MCM2-7 helicase during regulated loading.
- To elucidate the mechanism of helicase loading and its implications for cell cycle progression.
Main Methods:
- Utilized a chemical biology approach to investigate MCM2-7 helicase loading.
- Performed in vitro ATPase assays and in vivo chromatin loading analyses.
Main Results:
- Established that the Saccharomyces cerevisiae MCM2-7 hexamer forms a closed ring, requiring active opening for DNA entry.
- Identified a unique DNA entry gate formed by Mcm2 and Mcm5 subunits for ORC-Cdc6-Cdt1-dependent loading.
- Demonstrated that Mcm2/Mcm5 gate opening is essential for helicase loading and cell cycle progression.
- Showed that MCM2-7 is loaded as a single hexamer before double hexamer formation.
Conclusions:
- The study reveals a unique Mcm2/Mcm5 DNA entry gate crucial for regulated MCM2-7 helicase loading.
- Uncovered key mechanisms of helicase loading and activation, with significant implications for genomic stability and cell cycle control.
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