Biophysics of protein evolution and evolutionary protein biophysics

Биофизика эволюции белков и эволюционная биофизика белков
Hue Sun Chan, Tobias Sikosek
2014-08-27

epistasismutational robustnessprotein biophysicsprotein evolutionprotein folding
The study of molecular evolution at the level of protein-coding genes often entails comparing large datasets of sequences to infer their evolutionary relationships. Despite the importance of a protein's structure and conformational dynamics to its function and thus its fitness, common phylogenetic methods embody minimal biophysical knowledge of proteins. To underscore the biophysical constraints on natural selection, we survey effects of protein mutations, highlighting the physical basis for marginal stability of natural globular proteins and how requirement for kinetic stability and avoidance of misfolding and misinteractions might have affected protein evolution. The biophysical underpinnings of these effects have been addressed by models with an explicit coarse-grained spatial representation of the polypeptide chain. Sequence-structure mappings based on such models are powerful conceptual tools that rationalize mutational robustness, evolvability, epistasis, promiscuous function performed by 'hidden' conformational states, resolution of adaptive conflicts and conformational switches in the evolution from one protein fold to another. Recently, protein biophysics has been applied to derive more accurate evolutionary accounts of sequence data. Methods have also been developed to exploit sequence-based evolutionary information to predict biophysical behaviours of proteins. The success of these approaches demonstrates a deep synergy between the fields of protein biophysics and protein evolution.
1
Coarse-grained spatial models of polypeptide chains explain mutational robustness, evolvability, epistasis, hidden-state promiscuous function, adaptive-conflict resolution, and conformational switching between folds.
2
Kinetic stability, avoidance of misfolding, and prevention of harmful misinteractions likely influence protein evolutionary trajectories.
3
Natural globular proteins are marginally stable, making protein stability a significant constraint on mutations and natural selection.
4
Protein biophysics is increasingly used to construct more accurate evolutionary models of sequence data, while evolutionary sequence information can predict protein biophysical behavior.
5
The integration of protein biophysics and evolutionary analysis reveals a strong synergy between the two fields.

protein-coding genes and their encoded natural globular proteins

the biophysical constraints and effects of protein mutations on molecular evolution, including stability, folding, misinteractions, robustness, evolvability, epistasis, and conformational dynamics

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2014-08-27
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Hue Sun Chan
Tobias Sikosek
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