English

Internal protein dynamics shifts the distance to the mechanical transition state

Biological Physics 2015-06-26 v1

Abstract

Mechanical unfolding of polyproteins by force spectroscopy provides valuable insight into their free energy landscapes. Most phenomenological models of the unfolding process are two-state and/or one dimensional, with the details of the protein and its dynamics often subsumed into a zero-force unfolding rate and a single distance xu1Dx_u^{1\textrm{D}} to the transition state. We consider the entire phase space of a model protein under a constant force, and show that the distance xu1Dx_u^{1\textrm{D}} contains a sizeable contribution from exploring the full multidimensional energy landscape. Proteins with more degrees of freedom are expected to have larger values for xu1Dx_u^{1\textrm{D}}. We show that externally attached flexible linkers also contribute to the measured unfolding characteristics.

Keywords

Cite

@article{arxiv.physics/0612183,
  title  = {Internal protein dynamics shifts the distance to the mechanical transition state},
  author = {Daniel K. West and Emanuele Paci and Peter D. Olmsted},
  journal= {arXiv preprint arXiv:physics/0612183},
  year   = {2015}
}

Comments

4 pages, accepted to Phys Rev E