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A Novel Saturation Mutagenesis Approach: Single Step Characterization of Regulatory Protein Binding Sites in RNA Using Phosphorothioates
Published on: August 21, 2018
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.
Abstract:
The scaffold nature of Xeroderma pigmentosum complementation group A (XPA) protein makes it an important member of nucleotide excision repair (NER) that removes bulky DNA lesions with the help of various protein-protein interactions (PPI) and DNA-protein interactions. However, many structural insights of XPA's interaction and the binding patterns with other NER proteins are yet to be understood. Here, we have studied one such crucial PPI of XPA with another NER protein, Xeroderma pigmentosum complementation group A (XPE), by using the previously identified binding site of XPA (residues 185-226) in the Assisted Model Building With Energy Refinement force-field-mediated dynamic system. We studied the relationship between XPA185-226-XPE complex using three different docked models. The major residues observed in all of the models that were responsible for the PPI of this complex were Arg20, Arg47, Asp51, and Leu57 from XPE and the residues Leu191, Gln192, Val193, Trp194, Glu198, Glu202, Glu205, Arg207, Glu209, Gln216, and Phe219 from XPE185-226. During the simulation study, the orientation of XPA was also noted to be changed by almost 180° in models 1 and 3, which remain unchanged in model 2, indicating that XPA interacts with XPE with its N-terminal end facing downward and C-terminal end facing upward. The same was concurrent with the binding of DNA-binding domain region of XPA (aa98-239) with XPE. The N-terminal of XPE was stretched for accommodating XPA. Using the per-residue energy decomposition analysis for the interface residues of all models, the binding affinity between these proteins were found to be dependent on R20, R47, and L57 of XPE and the residues L191, V193, W194, E198, E202, E205, R207, and F219 of XPA. The net binding free energy of the XPA185-226-XPE protein complex was found to be -48.3718 kcal mol-1 for model 1, -49.09 kcal mol-1 for model 2, and -56.51 kcal mol-1 for model 3.
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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