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Updated: Jun 5, 2026

A Simple, Rapid, and Quantitative Assay to Measure Repair of DNA-protein Crosslinks on Plasmids Transfected into Mammalian Cells
Published on: March 5, 2018
Repair and biochemical effects of DNA-protein crosslinks
Hiroshi Ide1, Mahmoud I Shoulkamy, Toshiaki Nakano
1Department of Mathematical and Life Sciences, Graduate School of Science, Hiroshima University, Higashi-Hiroshima 739-8526, Japan. ideh@hiroshima-u.ac.jp
Abstract:
Genomic DNA is associated with various structural, regulatory, and transaction proteins. The dynamic and reversible association between proteins and DNA ensures the accurate expression and propagation of genetic information. However, various endogenous, environmental, and chemotherapeutic agents induce DNA-protein crosslinks (DPCs), and hence covalently trap proteins on DNA. Since DPCs are extremely large compared to conventional DNA lesions, they probably impair many aspects of DNA transactions such as replication, transcription, and repair due to steric hindrance. Recent genetic and biochemical studies have shed light on the elaborate molecular mechanism by which cells repair or tolerate DPCs. This review summarizes the current knowledge regarding the repair and biochemical effects of the most ubiquitous form of DPCs, which are associated with no flanked DNA strand breaks. In bacteria small DPCs are eliminated by nucleotide excision repair (NER), whereas oversized DPCs are processed by RecBCD-dependent homologous recombination (HR). NER does not participate in the repair of DPCs in mammalian cells, since the upper size limit of DPCs amenable to mammalian NER is smaller than that of bacterial NER. Thus, DPCs are processed exclusively by HR. The reactivation of the stalled replication fork at DPCs by HR seems to involve fork breakage in mammalian cells but not in bacterial cells. In addition, recent proteomic studies have identified the numbers of proteins in DPCs induced by environmental and chemotherapeutic agents. However, it remains largely elusive how DPCs affect replication and transcription at the molecular level. Considering the extremely large nature of DPCs, it is possible that they impede the progression of replication and transcription machineries by mechanisms different from those for conventional DNA lesions. This might also be true for the DNA damage response and signaling mechanism.
Insights
DNA-protein crosslinks (DPCs) covalently trap proteins on DNA, impeding genetic processes. This review details how bacteria and mammalian cells repair these large lesions using distinct mechanisms like nucleotide excision repair and homologous recombination.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Genomic DNA interacts dynamically with proteins, crucial for genetic information management.
- Endogenous, environmental, and chemotherapeutic agents can form DNA-protein crosslinks (DPCs), trapping proteins on DNA.
- DPCs, larger than conventional DNA lesions, pose significant steric hindrance to DNA transactions.
Purpose of the Study:
- To review current knowledge on the repair and biochemical effects of DPCs, focusing on those without flanked DNA breaks.
- To compare DPC repair mechanisms in bacterial and mammalian cells.
- To highlight the impact of DPCs on DNA replication, transcription, and damage response.
Main Methods:
- Literature review of genetic and biochemical studies on DPC repair.
- Analysis of bacterial DPC repair pathways (NER, HR).
- Comparison of DPC processing in mammalian cells, emphasizing HR exclusivity.
Main Results:
- Bacteria repair small DPCs via NER and large DPCs via HR; mammalian cells exclusively use HR for DPC repair.
- Replication fork reactivation at DPCs involves fork breakage in mammals but not bacteria.
- Proteomic studies have identified proteins within DPCs, but molecular mechanisms of DPC impact on replication/transcription remain unclear.
Conclusions:
- DPC repair pathways differ significantly between bacteria and mammalian cells, with HR being central in mammals.
- The large size of DPCs suggests unique mechanisms of interference with DNA replication and transcription.
- Further research is needed to elucidate the precise molecular effects of DPCs on DNA transactions and damage signaling.
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