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.

Nucleic Acids Research
|February 13, 2020
PubMed

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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