MCM2-7 ring closure involves the Mcm5 C-terminus and triggers Mcm4 ATP hydrolysis

S Sarah V. Faull M Marta Barbon A Audrey Mossler Z Zuanning Yuan L Lin Bai (State Key Laboratory of Natural and Biomimetic Drugs, Department of Biophysics, School of Basic Medical Sciences) L L. Maximilian Reuter A Alberto Riera C Christian Winkler I Indiana Magdalou M Matthew Peach H Huilin Li C Christian Speck

Abstract

AbstractThe eukaryotic helicase MCM2-7, is loaded by ORC, Cdc6 and Cdt1 as a double-hexamer onto replication origins. The insertion of DNA into the helicase leads to partial MCM2-7 ring closure, while ATP hydrolysis is essential for consecutive steps in pre-replicative complex (pre-RC) assembly. Currently it is unknown how MCM2-7 ring closure and ATP-hydrolysis are controlled. A cryo-EM structure of an ORC-Cdc6-Cdt1-MCM2-7 intermediate shows a remodelled, fully-closed Mcm2/Mcm5 interface. The Mcm5 C-terminus (C5) contacts Orc3 and specifically recognises this closed ring. Interestingly, we found that normal helicase loading triggers Mcm4 ATP-hydrolysis, which in turn leads to reorganisation of the MCM2-7 complex and Cdt1 release. However, defective MCM2-7 ring closure, due to mutations at the Mcm2/Mcm5 interface, leads to MCM2-7 ring splitting and complex disassembly. As such we identify Mcm4 as the key ATPase in regulating pre-RC formation. Crucially, a stable Mcm2/Mcm5 interface is essential for productive ATP-hydrolysis-dependent remodelling of the helicase.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 02, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (12)

S

Sarah V. Faull

M

Marta Barbon

A

Audrey Mossler

Z

Zuanning Yuan

L

Lin Bai

State Key Laboratory of Natural and Biomimetic Drugs, Department of Biophysics, School of Basic Medical Sciences

L

L. Maximilian Reuter

A

Alberto Riera

C

Christian Winkler

I

Indiana Magdalou

M

Matthew Peach

H

Huilin Li

C

Christian Speck