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Deciphering GB1's Single Mutational Landscape: Insights from MuMi Analysis.
Tandac F Guclu1, Ali Rana Atilgan1, Canan Atilgan1
1Faculty of Natural Sciences and Engineering, Sabanci University, Tuzla, Istanbul 34956, Turkey.
The Journal of Physical Chemistry. B
|August 8, 2024
Summary
Computational methods accurately predict protein binding affinity changes. In silico scanning and molecular dynamics reveal key interactions between Streptococcal protein G (GB1) and human IgG-Fc, explaining binding landscapes.
Area of Science:
- Structural biology
- Computational biophysics
- Protein engineering
Background:
- Deep mutational scanning (DMS) has mapped mutations affecting Streptococcal protein G (GB1) binding to human IgG-Fc.
- Experimental binding affinities for single mutations are available in the literature.
Purpose of the Study:
- To investigate the molecular basis of GB1-IgG-Fc binding using computational methods.
- To assess the utility of in silico mutational scanning and molecular dynamics for predicting protein fitness landscapes.
Main Methods:
- Performed in silico mutational scanning for all single mutations of GB1.
- Conducted 2 μs molecular dynamics (WT-MD) of wild-type GB1 in unbound and IgG-Fc bound states.
- Analyzed hydrogen bonds, residue solvent accessibility, and binding interface probabilities using WT-MD and Mutation and Minimization (MuMi) conformations.
Main Results:
- Identified dominant hydrogen bonds critical for GB1-IgG-Fc binding.
- Explained the GB1-IgG-Fc binding fitness landscape by analyzing MuMi conformations.
- Investigated binding dynamics, including residue accessibility and interface localization.
Conclusions:
- Mutation and Minimization (MuMi) is a reliable and efficient computational tool for predicting protein fitness landscapes.
- The study provides insights into GB1-IgG-Fc interactions and binding structural features.
- Methodologies advance predictive accuracy in protein stability and interaction studies for drug design and synthetic biology.
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