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Nature|March 6, 2015
Regulated eukaryotic DNA replication origin firing with purified proteinsJoseph T P Yeeles, Tom D Deegan, Agnieszka Janska, et al.Molecular Cell|December 20, 2016
Chromatin Controls DNA Replication Origin Selection, Lagging-Strand Synthesis, and Replication Fork RatesChristoph F Kurat, Joseph T P Yeeles, Harshil Patel, et al.Molecular Systems Biology|November 6, 2009
Global effects of DNA replication and DNA replication origin activity on eukaryotic gene expressionLarsson Omberg, Joel R Meyerson, Kayta Kobayashi, et al.RSC Advances|June 28, 2021
An improved method for the incorporation of fluoromethyl ketones into solid phase peptide synthesis techniquesDhira Joshi, Jennifer C Milligan, Theresa U Zeisner, et al.Cell|November 10, 2009
Concerted loading of Mcm2-7 double hexamers around DNA during DNA replication origin licensingDirk Remus, Fabienne Beuron, Gökhan Tolun, et al.Nature Communications|October 23, 2023
A chromatinized origin reduces the mobility of ORC and MCM through interactions and spatial constraintHumberto Sánchez, Zhaowei Liu, Edo van Veen, et al.Molecular and Cellular Biology|July 30, 2004
Role of DNA replication proteins in double-strand break-induced recombination in Saccharomyces cerevisiaeXuan Wang, Grzegorz Ira, José Antonio Tercero, et al.DNA Repair|December 10, 2025
How DNA secondary structures drive replication fork instabilityAditya Sethi, María Fernández-Casañas, Billie Delpino, et al.The EMBO Journal|February 26, 2014
Prereplicative complexes assembled in vitro support origin-dependent and independent DNA replicationKin Fan On, Fabienne Beuron, David Frith, et al.Molecular Cell|June 27, 2025
The DNA replication checkpoint limits Okazaki fragment accumulation to protect and restart stalled forksBerta Canal, Agostina P Bertolin, Giselle C Lee, et al.Pageof 9