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Updated: Nov 11, 2025

Author Spotlight: Investigating the Motion Dynamics of the Eukaryotic Replisome Components at the Single-Molecule Level
Published on: July 26, 2024
The capacity of origins to load MCM establishes replication timing patterns
1Department of Biochemistry and Molecular Pharmacology, University of Massachusetts Medical School Worcester, Massachusetts, United States of America.
Abstract:
Loading of the MCM replicative helicase at origins of replication is a highly regulated process that precedes DNA replication in all eukaryotes. The stoichiometry of MCM loaded at origins has been proposed to be a key determinant of when those origins initiate replication during S phase. Nevertheless, the genome-wide regulation of MCM loading stoichiometry and its direct effect on replication timing remain unclear. In order to investigate why some origins load more MCM than others, we perturbed MCM levels in budding yeast cells and, for the first time, directly measured MCM levels and replication timing in the same experiment. Reduction of MCM levels through degradation of Mcm4, one of the six obligate components of the MCM complex, slowed progression through S phase and increased sensitivity to replication stress. Reduction of MCM levels also led to differential loading at origins during G1, revealing origins that are sensitive to reductions in MCM and others that are not. Sensitive origins loaded less MCM under normal conditions and correlated with a weak ability to recruit the origin recognition complex (ORC). Moreover, reduction of MCM loading at specific origins of replication led to a delay in their replication during S phase. In contrast, overexpression of MCM had no effects on cell cycle progression, relative MCM levels at origins, or replication timing, suggesting that, under optimal growth conditions, cellular MCM levels are not limiting for MCM loading. Our results support a model in which the loading capacity of origins is the primary determinant of MCM stoichiometry in wild-type cells, but that stoichiometry is controlled by origins' ability to recruit ORC and compete for MCM when MCM becomes limiting.
Insights
Regulating MCM helicase loading at DNA replication origins is crucial. Origin loading capacity, not just MCM levels, determines stoichiometry and replication timing, especially when MCM is limited.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- MCM helicase loading at replication origins is vital for DNA replication.
- MCM stoichiometry at origins is thought to influence replication timing.
- Genome-wide regulation of MCM loading and its effect on timing are not fully understood.
Purpose of the Study:
- Investigate the regulation of MCM loading stoichiometry at origins of replication.
- Determine the direct impact of MCM levels on replication timing.
- Understand why origins differ in MCM loading.
Main Methods:
- Perturbed MCM levels in budding yeast by degrading Mcm4.
- Directly measured MCM levels and replication timing simultaneously.
- Analyzed MCM loading sensitivity and ORC recruitment at origins.
Main Results:
- Reduced MCM levels slowed S phase progression and increased replication stress sensitivity.
- Differential MCM loading occurred at origins, with sensitive origins showing lower MCM and weaker ORC recruitment.
- Reduced MCM loading at origins delayed their replication timing.
- MCM overexpression did not affect cell cycle progression or replication timing.
Conclusions:
- Origin loading capacity, influenced by ORC recruitment, is the primary determinant of MCM stoichiometry.
- Stoichiometry is controlled by origins' ability to recruit ORC and compete for MCM under limiting conditions.
- Cellular MCM levels are not limiting for MCM loading under optimal growth conditions.
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