Characterizing the Binding Interactions between DNA-Binding Proteins, XPA and XPE: A Molecular Dynamics Approach

Sushmita Pradhan1, Pundarikaksha Das1, Venkata Satish Kumar Mattaparthi1

  • 1Molecular Modelling and Simulation Laboratory, Department of Molecular Biology and Biotechnology, Tezpur University, Tezpur 784 028, Assam, India.

ACS Omega
|August 29, 2019
PubMed

Insights

This study reveals key protein interactions in DNA repair, specifically how Xeroderma pigmentosum complementation group A (XPA) binds with Xeroderma pigmentosum complementation group E (XPE). Understanding these interactions is crucial for DNA repair mechanisms.

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • The Xeroderma pigmentosum complementation group A (XPA) protein is vital for nucleotide excision repair (NER), a process that removes bulky DNA lesions.
  • While XPA's role in NER is established, the structural details of its interactions with other NER proteins remain incompletely understood.

Purpose of the Study:

  • To investigate the protein-protein interaction (PPI) between XPA and Xeroderma pigmentosum complementation group E (XPE) within the NER pathway.
  • To elucidate the binding patterns and key residues involved in the XPA-XPE complex formation.

Main Methods:

  • Utilized Assisted Model Building With Energy Refinement (AMBER) force-field-mediated molecular dynamics simulations.
  • Analyzed three distinct docked models of the XPA185-226-XPE complex.
  • Performed per-residue energy decomposition analysis to determine binding affinities.

Main Results:

  • Identified critical residues from XPE (Arg20, Arg47, Asp51, Leu57) and XPA (Leu191, Gln192, Val193, Trp194, Glu198, Glu202, Glu205, Arg207, Glu209, Gln216, Phe219) involved in the interaction.
  • Observed significant orientation changes in XPA during simulations, suggesting specific binding modes.
  • Calculated net binding free energies for the complex, with model 3 showing the highest affinity (-56.51 kcal mol-1).

Conclusions:

  • The study provides structural insights into the XPA-XPE interaction, highlighting key residues essential for complex stability.
  • The findings contribute to a deeper understanding of the molecular mechanisms underlying nucleotide excision repair.
  • This research lays the groundwork for further investigations into NER pathway regulation and potential therapeutic targets.

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