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Updated: Jan 9, 2026

Single-Molecule Fluorescence Visualization of DNA Polymerase Dynamics at G-Quadruplexes
Published on: April 4, 2025
Global conformational dynamics of a Y-family DNA polymerase during catalysis
Cuiling Xu1, Brian A Maxwell, Jessica A Brown
1Department of Biochemistry, The Ohio State University, Columbus, Ohio, USA.
Abstract:
Replicative DNA polymerases are stalled by damaged DNA while the newly discovered Y-family DNA polymerases are recruited to rescue these stalled replication forks, thereby enhancing cell survival. The Y-family DNA polymerases, characterized by low fidelity and processivity, are able to bypass different classes of DNA lesions. A variety of kinetic and structural studies have established a minimal reaction pathway common to all DNA polymerases, although the conformational intermediates are not well defined. Furthermore, the identification of the rate-limiting step of nucleotide incorporation catalyzed by any DNA polymerase has been a matter of long debate. By monitoring time-dependent fluorescence resonance energy transfer (FRET) signal changes at multiple sites in each domain and DNA during catalysis, we present here a real-time picture of the global conformational transitions of a model Y-family enzyme: DNA polymerase IV (Dpo4) from Sulfolobus solfataricus. Our results provide evidence for a hypothetical DNA translocation event followed by a rapid protein conformational change prior to catalysis and a subsequent slow, post-chemistry protein conformational change. Surprisingly, the DNA translocation step was induced by the binding of a correct nucleotide. Moreover, we have determined the directions, rates, and activation energy barriers of the protein conformational transitions, which indicated that the four domains of Dpo4 moved in a synchronized manner. These results showed conclusively that a pre-chemistry conformational change associated with domain movements was too fast to be the rate-limiting step. Rather, the rearrangement of active site residues limited the rate of correct nucleotide incorporation. Collectively, the conformational dynamics of Dpo4 offer insights into how the inter-domain movements are related to enzymatic function and their concerted interactions with other proteins at the replication fork.
Insights
Y-family DNA polymerases bypass DNA damage to ensure cell survival. This study reveals how DNA polymerase IV (Dpo4) uses synchronized domain movements and active site rearrangements to incorporate nucleotides, identifying the rate-limiting step in DNA repair.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Replicative DNA polymerases stall at damaged DNA, necessitating bypass mechanisms.
- Y-family DNA polymerases are crucial for bypassing DNA lesions and maintaining cell survival.
- The rate-limiting step in DNA polymerase catalysis remains debated, with conformational changes being key.
Purpose of the Study:
- To elucidate the real-time conformational dynamics of a Y-family DNA polymerase (Dpo4) during catalysis.
- To identify the rate-limiting step in nucleotide incorporation for Y-family DNA polymerases.
- To understand the relationship between domain movements and enzymatic function in DNA repair.
Main Methods:
- Time-dependent fluorescence resonance energy transfer (FRET) was used to monitor conformational changes.
- Multi-site FRET signals were analyzed across enzyme domains and DNA during catalysis.
- Kinetic parameters, including rates and activation energy barriers, were determined for conformational transitions.
Main Results:
- DNA translocation was induced by correct nucleotide binding, preceding catalysis.
- A rapid pre-chemistry protein conformational change and a slow post-chemistry change were observed.
- Dpo4 domains moved synchronously, with active site residue rearrangement limiting nucleotide incorporation rate.
Conclusions:
- The rate-limiting step for Y-family DNA polymerase IV (Dpo4) is the rearrangement of active site residues, not pre-chemistry domain movements.
- Conformational dynamics, including synchronized domain motion, are critical for Dpo4 function.
- Understanding these dynamics provides insights into DNA repair mechanisms and protein interactions at replication forks.
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