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Updated: Jan 16, 2026

Protein WISDOM: A Workbench for In silico De novo Design of BioMolecules
Published on: July 25, 2013
In Silico Fold-Switching Protein Design Driven by Cα-Based Statistical Potential
Bondeepa Saikia1, Anupaul Baruah1
1Department of Chemistry, Dibrugarh University, Dibrugarh, Assam 786004, India.
Researchers designed protein sequences with high similarity that fold into distinct structures, enabling fold-switching. Single mutations can trigger this switch, advancing protein design capabilities.
Area of Science:
- Protein engineering and computational biology.
- Investigating protein structural plasticity and fold-switching phenomena.
Background:
- Proteins naturally exhibit structural plasticity, altering conformation in response to environmental cues.
- Existing computational methods excel at designing proteins for single stable structures, but designing sequences for multiple distinct folds remains challenging.
- The ability of proteins to adopt divergent structures is crucial for biological functions.
Purpose of the Study:
- To computationally design protein sequences with high sequence similarity that adopt structurally divergent folds.
- To identify and validate fold-switching protein sequences.
- To explore the impact of single point mutations on inducing fold switching.
Main Methods:
- Utilized Monte Carlo simulations to design 28 pairs of protein sequences.
- Sequences were designed to adopt either a 3-alpha (3-α) helix fold or a 4-beta plus alpha (4β + α) fold.
- Rational design and sequence analysis were employed to generate sequence variants and test fold-switching induction via point mutations.
Main Results:
- Successfully designed three sets of fold-switching sequences with high sequence similarity (89.29% and 87.50%).
- Designed sequences exhibited distinct tertiary structures (3-α helix fold and 4β + α fold) despite minimal sequence divergence.
- Single point mutations (e.g., D26C, A39F) in designed sequences induced fold switching from 3-α to 4β + α fold, maintaining 98% sequence similarity.
Conclusions:
- The developed computational design approach successfully generates fold-switching protein sequences.
- Statistical potentials effectively balance competing structural constraints to achieve fold switching.
- The findings demonstrate the feasibility of designing proteins with tunable structural outcomes and highlight the potential for precise control over protein conformation through minimal sequence changes.
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