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HolD

  • DNA POLYMERASE III HOLOENZYME: Structure and Function of a Chromosomal Replicating Machine

    DNA POLYMERASE III HOLOENZYME: Structure and Function of a Chromosomal Replicating Machine

  • DNA REPLICATION, REPAIR, and RECOMBINATION Figure 5–1 Different Proteins Evolve at Very Different Rates

    DNA REPLICATION, REPAIR, and RECOMBINATION Figure 5–1 Different Proteins Evolve at Very Different Rates

  • Review Questions DNA Replication

    Review Questions DNA Replication

  • DNA Polymerase III: Minireview Running Rings Around the Fork

    DNA Polymerase III: Minireview Running Rings Around the Fork

  • A Specific Subdomain in 29 DNA Polymerase Confers Both

    A Specific Subdomain in 29 DNA Polymerase Confers Both

  • Alternative Okazaki Fragment Ligation Pathway by DNA Ligase III

    Alternative Okazaki Fragment Ligation Pathway by DNA Ligase III

  • DNA Replication in Prokaryotes

    DNA Replication in Prokaryotes

  • Replication Clamps and Clamp Loaders

    Replication Clamps and Clamp Loaders

  • A Structural View of Bacterial DNA Replication

    A Structural View of Bacterial DNA Replication

  • E. Coli Primase and DNA Polymerase III Holoenzyme Are Able to Bind

    E. Coli Primase and DNA Polymerase III Holoenzyme Are Able to Bind

  • Supplementary Materials: Modular Diversity of the BLUF Proteins and Their Potential for the Development of Diverse Optogenetic Tools

    Supplementary Materials: Modular Diversity of the BLUF Proteins and Their Potential for the Development of Diverse Optogenetic Tools

  • Multiplexed Droplet Loop-Mediated Isothermal Amplification With

    Multiplexed Droplet Loop-Mediated Isothermal Amplification With

  • The Role of Replication Clamp-Loader Protein Holc of Escherichia Coli in Overcoming Replication

    The Role of Replication Clamp-Loader Protein Holc of Escherichia Coli in Overcoming Replication

  • Structural Analysis of a Eukaryotic Sliding DNA Clamp–Clamp Loader Complex

    Structural Analysis of a Eukaryotic Sliding DNA Clamp–Clamp Loader Complex

  • RNA Polymerase II Stalls on Oxidative DNA Damage Via a Torsion-Latch Mechanism Involving Lone Pair–Π and CH–Π Interactions

    RNA Polymerase II Stalls on Oxidative DNA Damage Via a Torsion-Latch Mechanism Involving Lone Pair–Π and CH–Π Interactions

  • The Ring-Type Polymerase Sliding Clamp Family Comment Irina Bruck and Mike O’Donnell

    The Ring-Type Polymerase Sliding Clamp Family Comment Irina Bruck and Mike O’Donnell

  • Central Role for Rnase Ybey in Hfq-Dependent and Hfq-Independent Small-RNA Regulation in Bacteria

    Central Role for Rnase Ybey in Hfq-Dependent and Hfq-Independent Small-RNA Regulation in Bacteria

  • Forensic Use of DNA Information: Human Rights, Privacy and Other Challenges Khaleda Parven University of Wollongong

    Forensic Use of DNA Information: Human Rights, Privacy and Other Challenges Khaleda Parven University of Wollongong

Top View
  • Biol 233, Biol 120, Biol 225, Biol 344, Biol 358
  • Template-Independent Ligation of Single-Stranded DNA by T4 DNA Ligase Heiko Kuhn and Maxim D
  • Clamp Loader Structure Predicts the Architecture of DNA Polymerase III Holoenzyme and RFC Mike O’Donnell†, David Jeruzalmi and John Kuriyan†
  • Regulatory Genes of Escherichia Coli (Primase Gene/Translational Modulation/Expression of Regulatory Proteins) WILLIAM KONIGSBERG* and G
  • Structure of a Sliding Clamp On
  • Repair of Damaged DNA for Forensic Analysis
  • The SOS Error-Prone DNA Polymerase V Mutasome and Β-Sliding Clamp Acting in Concert on Undamaged DNA and During Translesion Synthesis
  • Activation and Regulation of E. Coli DNA Polymerase V Studied at the Single-Molecule Level Caldas, Victor Emanoel Armini
  • Clamp Loader Atpases and the Evolution of DNA Replication Machinery Brian a Kelch1,3,*, Debora L Makino1,3,7, Mike O’Donnell6, John Kuriyan1,2,3,4,5
  • DNA Replicationreplication
  • Sliding Clamp Dynamics Within E. Coli DNA Polymerase I11 Holoenzyme
  • Double Strand Break Repair of Highly Damaged DNA
  • Replication Restart in Bacteria Downloaded From
  • The DNA Double Helix Is Held Together by Two Types of Bonds, Covalent and Hydrogen


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