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Updated: Jul 26, 2025

Author Spotlight: Investigating the Motion Dynamics of the Eukaryotic Replisome Components at the Single-Molecule Level
Published on: July 26, 2024
Activity, substrate preference and structure of the HsMCM8/9 helicase
David R McKinzey1, Chuxuan Li2, Yang Gao2
1Department of Chemistry and Biochemistry, Baylor University, Waco, TX 76706, USA.
Abstract:
The minichromosomal maintenance proteins, MCM8 and MCM9, are more recent evolutionary additions to the MCM family, only cooccurring in selected higher eukaryotes. Mutations in these genes are directly linked to ovarian insufficiency, infertility, and several cancers. MCM8/9 appears to have ancillary roles in fork progression and recombination of broken replication forks. However, the biochemical activity, specificities and structures have not been adequately illustrated, making mechanistic determination difficult. Here, we show that human MCM8/9 (HsMCM8/9) is an ATP dependent DNA helicase that unwinds fork DNA substrates with a 3'-5' polarity. High affinity ssDNA binding occurs in the presence of nucleoside triphosphates, while ATP hydrolysis weakens the interaction with DNA. The cryo-EM structure of the HsMCM8/9 heterohexamer was solved at 4.3 Å revealing a trimer of heterodimer configuration with two types of interfacial AAA+ nucleotide binding sites that become more organized upon binding ADP. Local refinements of the N or C-terminal domains (NTD or CTD) improved the resolution to 3.9 or 4.1 Å, respectively, and shows a large displacement in the CTD. Changes in AAA+ CTD upon nucleotide binding and a large swing between the NTD and CTD likely implies that MCM8/9 utilizes a sequential subunit translocation mechanism for DNA unwinding.
Insights
Human MCM8/9 (minichromosomal maintenance 8/9) proteins function as ATP-dependent DNA helicases. Their structure and mechanism reveal a sequential translocation process crucial for DNA replication fork stability and repair.
Area of Science:
- Molecular Biology
- Structural Biology
- Genetics
Background:
- MCM8 and MCM9 are recently evolved MCM proteins found in higher eukaryotes.
- Mutations in MCM8/9 are linked to infertility, ovarian insufficiency, and cancers.
- MCM8/9's roles in DNA replication and repair are known, but its biochemical activity and structure are poorly understood.
Purpose of the Study:
- To elucidate the biochemical activity and structure of human MCM8/9 (HsMCM8/9).
- To understand the mechanism of DNA unwinding by HsMCM8/9.
Main Methods:
- Biochemical assays to determine DNA helicase activity and substrate specificity.
- Cryo-electron microscopy (cryo-EM) to determine the structure of the HsMCM8/9 heterohexamer.
- Nucleotide binding studies.
Main Results:
- HsMCM8/9 functions as an ATP-dependent DNA helicase with 3'-5' polarity.
- High affinity single-stranded DNA binding occurs with nucleoside triphosphates, weakened by ATP hydrolysis.
- The cryo-EM structure reveals a trimer of heterodimers with distinct AAA+ nucleotide binding sites.
- Nucleotide binding induces conformational changes in the AAA+ domains and significant domain movement.
Conclusions:
- HsMCM8/9 utilizes a sequential subunit translocation mechanism for DNA unwinding.
- The structural and biochemical data provide mechanistic insights into MCM8/9 function in DNA replication and repair.
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