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Updated: Jan 21, 2026

Visualizing Protein-DNA Interactions in Live Bacterial Cells Using Photoactivated Single-molecule Tracking
Published on: March 10, 2014
Single-molecule visualization reveals the damage search mechanism for the human NER protein XPC-RAD23B
Na Young Cheon1, Hyun-Suk Kim2, Jung-Eun Yeo2
1School of Life Sciences, Ulsan National Institute of Science and Technology, Ulsan 44919, Republic of Korea.
Abstract:
DNA repair is critical for maintaining genomic integrity. Finding DNA lesions initiates the entire repair process. In human nucleotide excision repair (NER), XPC-RAD23B recognizes DNA lesions and recruits downstream factors. Although previous studies revealed the molecular features of damage identification by the yeast orthologs Rad4-Rad23, the dynamic mechanisms by which human XPC-RAD23B recognizes DNA defects have remained elusive. Here, we directly visualized the motion of XPC-RAD23B on undamaged and lesion-containing DNA using high-throughput single-molecule imaging. We observed three types of one-dimensional motion of XPC-RAD23B along DNA: diffusive, immobile and constrained. We found that consecutive AT-tracks led to increase in proteins with constrained motion. The diffusion coefficient dramatically increased according to ionic strength, suggesting that XPC-RAD23B diffuses along DNA via hopping, allowing XPC-RAD23B to bypass protein obstacles during the search for DNA damage. We also examined how XPC-RAD23B identifies cyclobutane pyrimidine dimers (CPDs) during diffusion. XPC-RAD23B makes futile attempts to bind to CPDs, consistent with low CPD recognition efficiency. Moreover, XPC-RAD23B binds CPDs in biphasic states, stable for lesion recognition and transient for lesion interrogation. Taken together, our results provide new insight into how XPC-RAD23B searches for DNA lesions in billions of base pairs in human genome.
Insights
Human XPC-RAD23B protein searches for DNA damage using hopping diffusion. It exhibits inefficient but biphasic binding to cyclobutane pyrimidine dimers, revealing lesion recognition dynamics.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Genomic integrity is maintained by DNA repair mechanisms.
- Nucleotide excision repair (NER) pathway utilizes XPC-RAD23B complex to detect DNA lesions.
- Human XPC-RAD23B's dynamic DNA damage recognition remains unclear.
Purpose of the Study:
- To visualize the motion of human XPC-RAD23B on DNA.
- To understand the mechanisms of DNA damage recognition by XPC-RAD23B.
Main Methods:
- High-throughput single-molecule imaging of XPC-RAD23B on undamaged and damaged DNA.
- Analysis of protein motion dynamics (diffusive, immobile, constrained).
- Investigation of XPC-RAD23B interaction with cyclobutane pyrimidine dimers (CPDs).
Main Results:
- XPC-RAD23B exhibits diffusive, immobile, and constrained motion along DNA.
- Protein diffusion is enhanced by ionic strength, suggesting hopping mechanism.
- Consecutive AT-tracks increase constrained motion.
- XPC-RAD23B shows low efficiency in CPD recognition with biphasic binding states.
Conclusions:
- Human XPC-RAD23B utilizes a hopping diffusion mechanism for efficient searching of DNA lesions.
- The protein engages in futile binding attempts and biphasic binding states for lesion interrogation.
- This study provides novel insights into the dynamic search for DNA damage in the human genome.
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