help button home button Biophys. J.
HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH

Biophys. J. BioFAST: First Published October 27, 2006. doi:10.1529/biophysj.106.087684
© 2006 by the Biophysical Society.


A more recent version of this article appeared on January 15, 2007.
This Article
Right arrow Full Text (Rapid PDF)
Right arrow All Versions of this Article:
biophysj.106.087684v1
92/2/547    most recent
Right arrow Alert me when this article is cited
Right arrow Alert me if a correction is posted
Services
Right arrow Similar articles in this journal
Right arrow Similar articles in PubMed
Right arrow Alert me to new issues of the journal
Right arrow Download to citation manager
Right arrow Author home page(s):
Mai Suan Li
Maxim Kouza
Chin-Kun Hu
Right arrow reprints & permissions
Citing Articles
Right arrow Citing Articles via Google Scholar
Google Scholar
Right arrow Articles by Li, M. S.
Right arrow Articles by Hu, C.-K.
Right arrow Search for Related Content
PubMed
Right arrow PubMed Citation
Right arrow Articles by Li, M. S.
Right arrow Articles by Hu, C.-K.

PROTEINS

Refolding upon force quench and pathways of mechanical and thermal unfolding of ubiquitin

Mai Suan Li 1*, Maxim Kouza 1 and Chin-Kun Hu 2

1 Institute of Physics, Polish Academy of Sciences
2 Institute of Physics, Academia Sinica, Taiwan

* To whom correspondence should be addressed. E-mail: masli{at}ifpan.edu.pl.

Submitted on April 26, 2006
Revised on June 10, 2006
Accepted on 22 September 2006


   Abstract
The refolding from stretched initial conformations of ubiquitin (PDB ID: 1ubq) under the quenched force is studied using the C{alpha}-Go model and the Langevin dynamics. It is shown that the refolding decouples the collapse and folding kinetics. The force quench refolding times scale as {tau}f ~ exp(fq{Delta}xf/kBT), where fq is the quench force and {Delta}xf {approx} 0.96 nm is the location of the average transition state along the reaction coordinate given by the end-to-end distance. This value is close to {Delta}xf {approx} 0.8 nm obtained from the force-clamp experiments [J. M. Fernandez and H. Li, Science 303, 1674-1678 (2004)]. The mechanical and thermal unfolding pathways are studied and compared with the experimental and all-atom simulation results in detail. The sequencing of thermal unfolding was found to be markedly different from the mechanical one. It is found that fixing the N-terminus of ubiquitin changes its mechanical unfolding pathways much more drastically compared to the case when the C-end is anchored. We obtained the distance between the native state and the transition state {Delta}xuf {approx} 0.24 nm which is in reasonable agreement with the experimental data.

Key Words: Go model, Langevin dynamics, free energy landscape, protein refolding, unfolding pathway







HOME HELP FEEDBACK SUBSCRIPTIONS ARCHIVE SEARCH
Copyright © 2006 by the Biophysical Society.