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Author Details

Mike O'Donnell
The Rockefeller University
1985
278
82
Andrej Sali (CM4AI)
PMIDPaper TitleJournal TitlePublished Year
37205351Molecular choreography of primer synthesis by the eukaryotic Pol α-primase.bioRxiv2023
37392384Structures of 9-1-1 DNA checkpoint clamp loading at gaps from start to finish and ramification on biology.Cell Rep2023
37344454Molecular choreography of primer synthesis by the eukaryotic Pol α-primase.Nat Commun2023
37205533Structures of 9-1-1 DNA checkpoint clamp loading at gaps from start to finish and ramification to biology.bioRxiv2023
35314830DNA is loaded through the 9-1-1 DNA checkpoint clamp in the opposite direction of the PCNA clamp.Nat Struct Mol Biol2022
35829698Cryo-EM structures reveal that RFC recognizes both the 3'- and 5'-DNA ends to load PCNA onto gaps for DNA repair.Elife2022
36442086SV40 T-antigen uses a DNA shearing mechanism to initiate origin unwinding.Proc Natl Acad Sci U S A2022
36418314Smc5/6's multifaceted DNA binding capacities stabilize branched DNA structures.Nat Commun2022
36215487Origin recognition complex harbors an intrinsic nucleosome remodeling activity.Proc Natl Acad Sci U S A2022
35999198Nucleosome-directed replication origin licensing independent of a consensus DNA sequence.Nat Commun2022
35934475Optimizing CMG helicase and CMG-dependent replication assays by designing DNA fork substrates and choosing nucleotide analogues for helicase preloading.Methods Enzymol2022
36116108Unexpected new insights into DNA clamp loaders: Eukaryotic clamp loaders contain a second DNA site for recessed 5' ends that facilitates repair and signals DNA damage: Eukaryotic clamp loaders contain a second DNA site for recessed 5' ends that facilitates repair and signals DNA damage.Bioessays2022
35042821CMG helicase can use ATPγS to unwind DNA: Implications for the rate-limiting step in the reaction mechanism.Proc Natl Acad Sci U S A2022
33252731The DNA Replication Machine: Structure and Dynamic Function.Subcell Biochem2021
33847559Allosteric communication in DNA polymerase clamp loaders relies on a critical hydrogen-bonded junction.Elife2021
33785598A unique Malpighian tubule architecture in <i>Tribolium castaneum</i> informs the evolutionary origins of systemic osmoregulation in beetles.Proc Natl Acad Sci U S A2021
33523561Water skating: How polymerase sliding clamps move on DNA.FEBS J2021
34742395Expression of recombinant multi-protein complexes in Saccharomyces cerevisiae.Methods Enzymol2021
32572031Structure of the polymerase ε holoenzyme and atomic model of the leading strand replisome.Nat Commun2020
31704183Tunability of DNA Polymerase Stability during Eukaryotic DNA Replication.Mol Cell2020
32019936DNA unwinding mechanism of a eukaryotic replicative CMG helicase.Nat Commun2020
33199603Replisome bypass of a protein-based R-loop block by Pif1.Proc Natl Acad Sci U S A2020
33300972Anatomy of a twin DNA replication factory.Biochem Soc Trans2020
33203675Structure of eukaryotic DNA polymerase δ bound to the PCNA clamp while encircling DNA.Proc Natl Acad Sci U S A2020
30598452Mcm10 has potent strand-annealing activity and limits translocase-mediated fork regression.Proc Natl Acad Sci U S A2019
31589141Ctf4 organizes sister replisomes and Pol α into a replication factory.Elife2019
31560343Getting ready for DNA duplication.Elife2019
31527759Nuclease dead Cas9 is a programmable roadblock for DNA replication.Sci Rep2019
31348887Replication Fork Activation Is Enabled by a Single-Stranded DNA Gate in CMG Helicase.Cell2019
31282859An explanation for origin unwinding in eukaryotes.Elife2019
30792289DNA replication from two different worlds.Science2019
30782813Mathematical description of eukaryotic chromosome replication.Proc Natl Acad Sci U S A2019
29259108Replication fork convergence at termination: A multistep process.Proc Natl Acad Sci U S A2018
29379175The ring-shaped hexameric helicases that function at DNA replication forks.Nat Struct Mol Biol2018
29405332The Eukaryotic CMG Helicase at the Replication Fork: Emerging Architecture Reveals an Unexpected Mechanism.Bioessays2018
28069954Quality control mechanisms exclude incorrect polymerases from the eukaryotic replication fork.Proc Natl Acad Sci U S A2017
28267969DNA Replication: How Does a Sliding Clamp Slide?Curr Biol2017
28346143Action of CMG with strand-specific DNA blocks supports an internal unwinding mode for the eukaryotic replicative helicase.Elife2017
28096349Structure of eukaryotic CMG helicase at a replication fork and implications to replisome architecture and origin initiation.Proc Natl Acad Sci U S A2017
29357060Architecture of the Saccharomyces cerevisiae Replisome.Adv Exp Med Biol2017
29036608Insights into RNA polymerase catalysis and adaptive evolution gained from mutational analysis of a locus conferring rifampicin resistance.Nucleic Acids Res2017
29082290<i>In vitro</i> Assays for Eukaryotic Leading/Lagging Strand DNA Replication.Bio Protoc2017
29078353Mutagenic cost of ribonucleotides in bacterial DNA.Proc Natl Acad Sci U S A2017
28923950Single-molecule visualization of <i>Saccharomyces cerevisiae</i> leading-strand synthesis reveals dynamic interaction between MTC and the replisome.Proc Natl Acad Sci U S A2017
28869037Mcm10 promotes rapid isomerization of CMG-DNA for replisome bypass of lagging strand DNA blocks.Elife2017
27003891The Eukaryotic Replisome Goes Under the Microscope.Curr Biol2016
28042596Bacterial and Eukaryotic Replisome Machines.JSM Biochem Mol Biol2016
27241931The Eukaryotic Replication Machine.Enzymes2016
27298353Phosphorylation of CMG helicase and Tof1 is required for programmed fork arrest.Proc Natl Acad Sci U S A2016
27416113Reconstitution of a eukaryotic replisome reveals the mechanism of asymmetric distribution of DNA polymerases.Nucleus2016
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Collaborators

University of California berkeley
Co-authored papers 36
University of California san francisco
Co-authored papers 12
The Rockefeller University
Co-authored papers 4
The Rockefeller University
Co-authored papers 4
Center for Advanced Biotechnology and Medicine, Rutgers University
Co-authored papers 2
Harvard Medical School
Co-authored papers 1
The Rockefeller University
Co-authored papers 1
University of California San Francisco
Co-authored papers 1
Institute for Systems Biology
Co-authored papers 1
University of Oxford
Co-authored papers 1
National Center for Advancing Translational Sciences, National Institutes of Health
Co-authored papers 1
Great Lakes Bioenergy Research Center, the University of Wisconsin-Madison
Co-authored papers 1
The Rockefeller University
Co-authored papers 1
University of California san francisco
Co-authored papers 1
Howard Hughes Medical Institute, Brigham and Women's Hospital, Harvard Medical School
Co-authored papers 1
University of Michigan ann arbor
Co-authored papers 1
University of California berkeley
Co-authored papers 1
King's College London
Co-authored papers 1
Center for Global Infectious Disease Research, Seattle Children's Research Institute
Co-authored papers 1
Memorial Sloan-Kettering Cancer Center
Co-authored papers 1
Memorial Sloan-Kettering Cancer Center
Co-authored papers 1
College of Medicine, Yangzhou University
Co-authored papers 1
Howard Hughes Medical Institute, The Rockefeller University
Co-authored papers 1