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Updated: Dec 28, 2025

Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
Sequence specificity, energetics and mechanism of mismatch recognition by DNA damage sensing protein Rad4/XPC
Abhinandan Panigrahi1, Hemanth Vemuri1, Madhur Aggarwal1
1Center for Computational Natural Sciences and Bioinformatics (CCNSB), International Institute of Information Technology, Gachibowli, Hyderabad, Telangana 500032, India.
Abstract:
The ultraviolet (UV) radiation-induced DNA lesions play a causal role in many prevalent genetic skin-related diseases and cancers. The damage sensing protein Rad4/XPC specifically recognizes and repairs these lesions with high fidelity and safeguards genome integrity. Despite considerable progress, the mechanistic details of the mode of action of Rad4/XPC in damage recognition remain obscure. The present study investigates the mechanism, energetics, dynamics, and the molecular basis for the sequence specificity of mismatch recognition by Rad4/XPC. We dissect the following three key molecular events that occur as Rad4/XPC tries to recognize and bind to DNA lesions/mismatches: (a) the association of Rad4/XPC with the damaged/mismatched DNA, (b) the insertion of a lesion-sensing β-hairpin of Rad4/XPC into the damage/mismatch site and (c) the flipping of a pair of nucleotide bases at the damage/mismatch site. Using suitable reaction coordinates, the free energy surfaces for these events are determined using molecular dynamics (MD) and umbrella sampling simulations on three mismatched (CCC/CCC, TTT/TTT and TAT/TAT mismatches) Rad4-DNA complexes. The study identifies the key determinants of the sequence-dependent specificity of Rad4 for the mismatches and explores the ramifications of specificity in the aforementioned events. The results unravel the molecular basis for the high specificity of Rad4 towards CCC/CCC mismatch and lower specificity for the TAT/TAT mismatch. A strong correlation between the depth of β-hairpin insertion into the DNA duplex and the degree of coupling between the hairpin insertion and the flipping of bases is also observed. The interplay of the conformational flexibility of mismatched bases, the depth of β-hairpin insertion, Rad4-DNA association energetics and the Rad4 specificity explored here complement recent experimental FRET studies on Rad4-DNA complexes.
Insights
The Rad4/XPC protein recognizes and repairs UV-induced DNA damage. This study reveals the molecular mechanisms and sequence specificity of Rad4/XPC in DNA mismatch repair, crucial for preventing genetic diseases.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Ultraviolet (UV) radiation causes DNA lesions linked to skin diseases and cancer.
- The Rad4/XPC protein is vital for recognizing and repairing these DNA lesions, maintaining genome integrity.
- The precise mechanism of Rad4/XPC in DNA damage recognition requires further elucidation.
Purpose of the Study:
- To investigate the mechanism, energetics, dynamics, and sequence specificity of Rad4/XPC in DNA mismatch recognition.
- To dissect the molecular events involved in Rad4/XPC binding to damaged DNA: association, beta-hairpin insertion, and base flipping.
- To understand the molecular basis for Rad4/XPC's specificity towards different DNA mismatches.
Main Methods:
- Molecular dynamics (MD) and umbrella sampling simulations were employed.
- Free energy surfaces were calculated for Rad4-DNA complexes with CCC/CCC, TTT/TTT, and TAT/TAT mismatches.
- Key molecular events including protein-DNA association, beta-hairpin insertion, and base flipping were analyzed.
Main Results:
- The study identified key factors determining Rad4/XPC's sequence-dependent specificity for DNA mismatches.
- A strong correlation was observed between beta-hairpin insertion depth and the coupling of hairpin insertion with base flipping.
- The molecular basis for Rad4/XPC's high specificity for CCC/CCC and lower specificity for TAT/TAT mismatches was revealed.
Conclusions:
- The findings elucidate the molecular basis of Rad4/XPC's high fidelity in DNA damage recognition and repair.
- Understanding Rad4/XPC specificity is crucial for comprehending its role in preventing UV-induced genetic diseases and cancers.
- The interplay of conformational flexibility, energetics, and protein dynamics governs Rad4/XPC's DNA recognition specificity.
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