Related Experiment Video
Updated: May 26, 2026

Structural Studies of Macromolecules in Solution using Small Angle X-Ray Scattering
Published on: November 5, 2018
Atomistic ensemble modeling and small-angle neutron scattering of intrinsically disordered protein complexes: applied
S Krueger1, J-H Shin, S Raghunandan
1National Institute of Standards and Technology Center for Neutron Research, National Institute of Standards and Technology, Gaithersburg, Maryland, USA. susan.krueger@nist.gov
Abstract:
The minichromosome maintenance (MCM) proteins are thought to function as the replicative helicases in archaea and eukarya. In this work we determined the solution structure of the N-terminal portion of the MCM complex from the archaeon Methanothermobacter thermautotrophicus (N-mtMCM) in the presence and absence of DNA using small-angle neutron scattering (SANS). N-mtMCM is a multimeric protein complex that consists of 12 monomers, each of which contains three distinct domains and two unstructured regions. Using an all-atom approach incorporating modern force field and Monte Carlo methods to allow the unstructured regions of each monomer to be varied independently, we generated an ensemble of biologically relevant structures for the complex. An examination of the subsets of structures that were most consistent with the SANS data revealed that large movements between the three domains of N-mtMCM can occur in solution. Furthermore, changes in the SANS curves upon DNA binding could be correlated to the motion of a particular N-mtMCM domain. These results provide structural support to the previously reported biochemical observations that large domain motions are required for the activation of the MCM helicase in archaea and eukarya. The methods developed here for N-mtMCM solution structure modeling should be suitable for other large protein complexes with unstructured flexible regions.
Insights
Minichromosome maintenance (MCM) proteins function as replicative helicases. This study reveals large domain movements in archaeal MCM complexes, crucial for DNA helicase activation, using SANS and computational modeling.
Area of Science:
- Structural biology
- Biochemistry
- Molecular dynamics
Background:
- Minichromosome maintenance (MCM) proteins are essential replicative helicases in archaea and eukarya.
- Understanding MCM complex structure and dynamics is key to elucidating DNA replication mechanisms.
Purpose of the Study:
- To determine the solution structure of the N-terminal portion of the MCM complex from Methanothermobacter thermautotrophicus (N-mtMCM).
- To investigate the structural dynamics of N-mtMCM in the presence and absence of DNA.
- To correlate structural changes with MCM helicase activation.
Main Methods:
- Small-angle neutron scattering (SANS) to analyze N-mtMCM structure in solution.
- All-atom computational modeling with Monte Carlo methods to generate structural ensembles.
- Independent variation of unstructured regions within each monomer.
Main Results:
- N-mtMCM is a 12-monomer complex exhibiting large domain movements in solution.
- DNA binding induces changes in SANS curves, linked to specific domain motion.
- Generated structural ensembles were consistent with SANS data.
Conclusions:
- Structural evidence supports the role of large domain motions in MCM helicase activation.
- The developed modeling methods are applicable to other large, flexible protein complexes.
- This study provides insights into the fundamental mechanisms of DNA replication initiation.
Related Concept Videos
Protein Complex Assembly
Many viruses self-assemble into a fully functional unit using the infected host cell to...
Protein Complexes with Interchangeable Parts
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order to...
Protein Complexes with Interchangeable Parts
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order to...

