Increasing protein stability by engineering the n → π* interaction at the β-turn
Bhavesh Khatri1, Puja Majumder1, Jayashree Nagesh2
1Molecular Biophysics Unit, Indian Institute of Science Bangalore 560012 India penmatsa@iisc.ac.in jayanta@iisc.ac.in.
Non-covalent n → π* interactions stabilize protein structure by restricting torsion angles. This study experimentally confirms their role in protein stability and highlights the influence of amino acid side chains.
Area of Science:
- Biochemistry
- Structural Biology
- Protein Science
Background:
- Non-covalent n → π* interactions between carbonyl groups are abundant in protein structures.
- These interactions are predicted to be crucial for protein structure determination.
- Experimental validation of these weak interactions in proteins has been difficult.
Purpose of the Study:
- To experimentally investigate the role of n → π* interactions in protein structural stability.
- To amplify the strength of n → π* interactions for experimental testing.
- To determine the influence of amino acid side-chain identity on n → π* interaction strength.
Main Methods:
- Utilized amino acid substitution and thioamide incorporation to enhance n → π* interactions.
- Focused on a solvent-exposed β-turn in GB1 proteins and the Pin 1 WW domain.
- Employed statistical analysis of protein structures to identify n → π* interactions.
Main Results:
- Demonstrated that amplified n → π* interactions increase protein structural stability.
- Showed that these interactions restrict the ϕ torsion angle, contributing to stability.
- Identified amino acid side-chain identity and rotameric conformation as key factors in interaction strength.
Conclusions:
- n → π* interactions are experimentally confirmed to enhance protein structural stability.
- The strength and impact of n → π* interactions are significantly influenced by amino acid side-chain properties.
- This work provides a foundation for understanding and manipulating protein structure through non-covalent interactions.
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