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Updated: Feb 9, 2026

Single-Molecule Fluorescence Visualization of DNA Polymerase Dynamics at G-Quadruplexes
Published on: April 4, 2025
Variable termination sites of DNA polymerases encountering a DNA-protein cross-link
Anna V Yudkina1,2, Antonina P Dvornikova1, Dmitry O Zharkov1,2
1Laboratory of Genome and Protein Engineering, Institute of Chemical Biology and Fundamental Medicine, Siberian Branch of the Russian Academy of Sciences, Novosibirsk, Russia.
Abstract:
DNA-protein cross-links (DPCs) are important DNA lesions induced by endogenous crosslinking agents such as formaldehyde or acetaldehyde, as well as ionizing radiation, cancer chemotherapeutic drugs, and abortive action of some enzymes. Due to their very bulky nature, they are expected to interfere with DNA and RNA synthesis and DNA repair. DPCs are highly genotoxic and the ability of cells to deal with them is relevant for many chemotherapeutic interventions. However, interactions of DNA polymerases with DPCs have been poorly studied due to the lack of a convenient experimental model. We have used NaBH4-induced trapping of E. coli formamidopyrimidine-DNA glycosylase with DNA to construct model DNA polymerase substrates containing a DPC in single-stranded template, or in the template strand of double-stranded DNA, or in the non-template (displaced) strand of double-stranded DNA. Nine DNA polymerases belonging to families A, B, X, and Y were studied with respect to their behavior upon encountering a DPC: Klenow fragment of E. coli DNA polymerase I, Thermus aquaticus DNA polymerase I, Pyrococcus furiosus DNA polymerase, Sulfolobus solfataricus DNA polymerase IV, human DNA polymerases β, κ and λ, and DNA polymerases from bacteriophages T4 and RB69. Although none were able to fully bypass DPCs in any context, Family B DNA polymerases (T4, RB69) and Family Y DNA polymerase IV were able to elongate the primer up to the site of the cross-link if a DPC was located in single-stranded template or in the displaced strand. In other cases, DNA synthesis stopped 4-5 nucleotides before the site of the cross-link in single-stranded template or in double-stranded DNA if the polymerases could displace the downstream strand. We suggest that termination of DNA polymerases on a DPC is mostly due to the unrelieved conformational strain experienced by the enzyme when pressing against the cross-linked protein molecule.
Insights
DNA-protein cross-links (DPCs) are toxic DNA lesions. This study shows DNA polymerases struggle to bypass DPCs, with some elongating primers near the lesion, suggesting conformational strain hinders synthesis.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- DNA-protein cross-links (DPCs) are significant DNA lesions with genotoxic effects.
- DPCs impede DNA replication and repair, posing challenges for cellular integrity.
- Understanding DNA polymerase interactions with DPCs is crucial for cancer therapy and DNA repair research.
Purpose of the Study:
- To investigate the behavior of various DNA polymerases when encountering DNA-protein cross-links (DPCs).
- To establish a model system for studying polymerase interactions with DPCs in different DNA contexts.
- To elucidate the mechanisms by which DPCs inhibit DNA synthesis.
Main Methods:
- Construction of model DNA substrates containing DPCs using NaBH4-induced trapping of E. coli formamidopyrimidine-DNA glycosylase.
- Assaying the activity of nine DNA polymerases from families A, B, X, and Y on these DPC-containing substrates.
- Analyzing primer extension and termination patterns in the presence of DPCs.
Main Results:
- No DNA polymerase fully bypassed DPCs in any tested context.
- Family B (T4, RB69) and Family Y (Sulfolobus solfataricus DNA polymerase IV) polymerases could elongate primers up to the DPC in single-stranded or displaced strands.
- DNA synthesis frequently terminated 4-5 nucleotides upstream of DPCs, especially in double-stranded DNA contexts where strand displacement occurred.
Conclusions:
- DNA polymerases exhibit limited ability to overcome DPCs, highlighting their role as significant DNA replication roadblocks.
- The inability to bypass DPCs is likely attributed to conformational strain experienced by the polymerase against the bulky cross-linked structure.
- These findings have implications for understanding DNA repair mechanisms and the efficacy of chemotherapeutic agents that induce DPCs.
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