Effects of confinement on thermal stability and folding kinetics in a simple Ising-like model
arXiv:1112.1193 · doi:10.1088/1478-3975/9/1/016006
Abstract
In cellular environment, confinement and macromulecular crowding play an important role on thermal stability and folding kinetics of a protein. We have resorted to a generalized version of the Wako-Saito-Munoz-Eaton model for protein folding to study the behavior of six different protein structures confined between two walls. Changing the distance 2R between the walls, we found, in accordance with previous studies, two confinement regimes: starting from large R and decreasing R, confinement first enhances the stability of the folded state as long as this is compact and until a given value of R; then a further decrease of R leads to a decrease of folding temperature and folding rate. We found that in the low confinement regime both unfolding temperatures and logarithm of folding rates scale as R-γ where γ values lie in between 1.42 and 2.35.
References in corpus (13)
- Polymer chains in confined spaces and flow-injection problems: some remarks
- An Ising-Like model for protein mechanical unfolding
- Mechanical unfolding and refolding pathways of ubiquitin
- Kinetics of the Wako-Saito-Munoz-Eaton Model of Protein Folding
- Downhill versus two-state protein folding in a statistical mechanical model
- Protein mechanical unfolding: a model with binary variables
- Rate Determining Factors in Protein Model Structures
- Exactness of the cluster variation method and factorization of the equilibrium probability for the Wako-Saito-Munoz-Eaton model of protein folding
- Rigorous results on the local equilibrium kinetics of a protein folding model
- Direction dependent mechanical unfolding and Green Fluorescent Protein as a force sensor
- Analysis of the Equilibrium and Kinetics of the Ankyrin Repeat Protein Myotrophin
- Equilibrium properties and force-driven unfolding pathways of RNA molecules
- Pathways of mechanical unfolding of FnIII_{10}: low force intermediates