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.

Plos One
|June 2, 2018
PubMed

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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