Approaching protein design with multisite λ dynamics: Accurate and scalable mutational folding free energies in T4 lysozyme
Новый подход к дизайну белков с использованием многосайтовой λ-динамики: точные и масштабируемые свободные энергии фолдинга мутантов лизоцима T4
2018-09-03
SCID: 54.1/zqbqxgtm
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T4 lysozymealchemical free energy calculationsmultisite λ dynamicsmutational folding free energiesprotein design
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Abstract (AI)
The estimation of changes in free energy upon mutation is central to the problem of protein design. Modern protein design methods have had remarkable success over a wide range of design targets, but are reaching their limits in ligand binding and enzyme design due to insufficient accuracy in mutational free energies. Alchemical free energy calculations have the potential to supplement modern design methods through more accurate molecular dynamics based prediction of free energy changes, but suffer from high computational cost. Multisite λ dynamics (MSλD) is a particularly efficient and scalable free energy method with potential to explore combinatorially large sequence spaces inaccessible with other free energy methods. This work aims to quantify the accuracy of MSλD and demonstrate its scalability. We apply MSλD to the classic problem of calculating folding free energies in T4 lysozyme, a system with a wealth of experimental measurements. Single site mutants considering 32 mutations show remarkable agreement with experiment with a Pearson correlation of 0.914 and mean unsigned error of 1.19 kcal/mol. Multisite mutants in systems with up to five concurrent mutations spanning 240 different sequences show comparable agreement with experiment. These results demonstrate the promise of MSλD in exploring large sequence spaces for protein design.
Key Findings
1
For 32 single-site T4 lysozyme mutants, MSλD folding free energies agreed strongly with experiment, achieving a Pearson correlation of 0.914 and a mean unsigned error of 1.19 kcal/mol.
2
MSλD maintained comparable agreement with experiment for multisite T4 lysozyme mutants involving up to five concurrent mutations across 240 sequences.
3
Multisite λ dynamics (MSλD) is presented as an efficient, scalable alchemical free-energy method for exploring combinatorially large protein sequence spaces.
4
The results support MSλD as a promising approach for supplementing protein design methods where accurate mutational free energies are needed, including ligand-binding and enzyme-design applications.
Research Object
T4 lysozyme mutants and their protein-folding system
Research Subject
Mutational folding free-energy changes and the accuracy and scalability of their prediction using multisite λ dynamics
Publication Details
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2018-09-03
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