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Updated: Jan 8, 2026

Deciphering Molecular Mechanism of Histone Assembly by DNA Curtain Technique
Published on: March 9, 2022
Assembly of a homohexameric minichromosome maintenance complex is dependent on ATP and DNA
Oliver W Noble1, Clement Degut1, Michael R Hodgkinson2
1Department of Biology, University of York, York, UK; York Structural Biology Laboratory, University of York, York, UK.
Abstract:
The minichromosome maintenance (MCM) complex is the replicative helicase in eukaryotes and archaea, unwinding genomic DNA upstream of DNA polymerase. The eukaryotic MCM complex forms from six different subunits (Mcm2-7), whereas in archaea, the complex is homohexameric. Both types of MCM can assemble into functional helicases in vitro in the absence of cofactors. However, despite being simpler in composition, we know little about how a homohexameric archaeal MCM assembles, largely because the field has lacked a convenient system to interrogate. Historically, characterization of archaeal MCMs has focused on proteins from thermophilic organisms, which typically form robust oligomers in solution. We have identified an uncharacterized MCM from the mesophilic archaeon Mancarchaeum acidophilum (MacMCM) that shows strong DNA unwinding activity at room temperature. Unexpectedly, apo-MacMCM is monomeric in solution, providing a first opportunity to investigate the mechanisms of assembly of an active homohexameric MCM complex in vitro. We show that MacMCM requires both ATP and DNA to form an active homohexamer, and that the C-terminal winged-helix domain impedes oligomerization. We report the 3D structure of MacMCM, which reveals similar numbers of interactions at subunit-subunit interfaces as eukaryotic MCMs but fewer than MCMs from thermophilic archaea. Finally, we show that installing subunit-subunit salt bridges from Sulfolobus solfataricus MCM into MacMCM promotes oligomerization. Heterohexameric eukaryotic MCMs evolved from a homomeric ancestor. Our results identify structural and ligand-driven mechanisms of assembly that are conserved between homomeric and heteromeric MCMs.
Insights
Researchers discovered how a key DNA replication enzyme, the minichromosome maintenance (MCM) complex, assembles in archaea. This study reveals essential mechanisms for forming the homohexameric MCM complex, crucial for DNA replication in many organisms.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- The minichromosome maintenance (MCM) complex functions as the replicative helicase in eukaryotes and archaea.
- Eukaryotic MCM complexes are heterohexamers (Mcm2-7), while archaeal MCMs are homohexamers.
- Understanding archaeal MCM assembly is limited due to a lack of suitable model systems.
Purpose of the Study:
- To investigate the assembly mechanism of a homohexameric archaeal MCM complex.
- To characterize the MCM from the mesophilic archaeon Mancarchaeum acidophilum (MacMCM).
- To identify factors influencing MacMCM oligomerization and compare it to other MCM complexes.
Main Methods:
- Biochemical assays to assess DNA unwinding activity.
- Analytical ultracentrifugation to determine solution state (monomeric/oligomeric).
- 3D structural determination of MacMCM.
- Site-directed mutagenesis to introduce salt bridges from other MCMs.
Main Results:
- Apo-MacMCM is monomeric in solution, unlike thermophilic archaeal MCMs.
- MacMCM requires ATP and DNA for active homohexamer formation.
- The C-terminal winged-helix domain inhibits oligomerization.
- The MacMCM structure shows fewer subunit-subunit interactions than thermophilic archaeal MCMs.
- Introducing specific salt bridges promotes MacMCM oligomerization.
Conclusions:
- MacMCM assembly is regulated by ATP, DNA, and its C-terminal domain.
- Structural insights reveal conserved and divergent features in MCM assembly mechanisms.
- Mechanisms of assembly are conserved between homomeric and heteromeric MCM complexes, shedding light on evolutionary origins.
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