The nonlinear elasticity of an -helical polypeptide
arXiv:cond-mat/0405382 · doi:10.1103/PhysRevE.71.031905
Abstract
We study a minimal extension of the worm-like chain to describe polypeptides having alpha-helical secondary structure. In this model presence/absence of secondary structure enters as a scalar variable that controls the local chain bending modulus. Using this model we compute the extensional compliance of an alpha-helix under tensile stress, the bending compliance of the molecule under externally imposed torques, and the nonlinear interaction of such torques and forces on the molecule. We find that, due to coupling of the ``internal'' secondary structure variables to the conformational degrees of freedom of the polymer, the molecule has a highly nonlinear response to applied stress and force couples. In particular we demonstrate a sharp lengthening transition under applied force and a buckling transition under applied torque. Finally, we speculate that the inherent bistability of the molecule may underlie protein conformational change \emph{in vivo}.
16 pages, 7 eps figures
References in corpus (1)
Cited by in corpus (9)
- Physics of base-pairing dynamics in DNA
- Elasticity of semiflexible polymers in two dimensions
- Protein-Mediated DNA Loops: Effects of Protein Bridge Size and Kinks
- Influence of the structural modulations and the Chain-ladder interaction in the compounds
- Coil-helix transition of polypeptide at water-lipid interface
- High-energy deformation of filaments with internal structure and localized torque-induced melting of DNA
- Bending Elasticity of the reversible Freely Jointed Chain
- Steady state running rate sets the speed and accuracy of accumulation of swimming bacterial populations
- Cavity approach for modeling and fitting polymer stretching