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Mechanical stretching of the I27 domain of titin and of its double and triple repeats are studied through molecular dynamics simulations of a Go-like model with Lennard-Jones contact interactions. We provide a thorough characterization of…

统计力学 · 物理学 2007-05-23 Marek Cieplak , Trinh Xuan Hoang , Mark O. Robbins

We have developed a new simulation method to estimate the distance between the native state and the first transition state, and the distance between the intermediate state and the second transition state of a protein which mechanically…

生物大分子 · 定量生物学 2009-11-13 Mai Suan Li , A. M. Gabovich , A. I. Voitenko

Mechanical unfolding of the fourth domain of Distyostelium discoideum filamin (DDFLN4) was studied in detail using the C$_{\alpha}$-Go model. We show that unfolding pathways of this protein depend on the pulling speed. The agreement between…

生物大分子 · 定量生物学 2015-05-14 Mai Suan Li , Maksim Kouza

Comparison of properties of three domains of titin, I1, I27 and I28, in a simple geometry-based model shows that despite a high structural homology between their native states different domains show similar but distinguishable mechanical…

生物大分子 · 定量生物学 2009-11-10 Marek Cieplak , Annalisa Pastore , Trinh Xuan Hoang

The effect of temperature on mechanical unfolding of proteins is studied using a Go-like model with a realistic contact map and Lennard-Jones contact interactions. The behavior of the I27 domain of titin and its serial repeats is contrasted…

生物大分子 · 定量生物学 2007-05-23 Marek Cieplak , Trinh Xuan Hoang , Mark O. Robbins

Mechanical unfolding and refolding of ubiquitin are studied by Monte Carlo simulations of a Go model with binary variables. The exponential dependence of the time constants on the force is verified, and folding and unfolding lengths are…

软凝聚态物质 · 物理学 2008-04-22 A. Imparato , A. Pelizzola

We study the mechanical unfolding of a simple model protein. The Langevin dynamics results are analyzed using Markov-model methods which allow to describe completely the configurational space of the system. Using transition path theory we…

生物物理 · 物理学 2015-06-08 Rafael Tapia-Rojo , Sergio Arregui , Juan José Mazo , Fernando Falo

Mechanical unfolding of several domains of calmodulin and titin is studied using a Go-like model with a realistic contact map and Lennard-Jones contact interactions. It is shown that this simple model captures the experimentally observed…

生物大分子 · 定量生物学 2009-11-10 Marek Cieplak

We investigate the mechanical unfolding of the tenth type III domain from fibronectin, FnIII10, both at constant force and at constant pulling velocity, by all-atom Monte Carlo simulations. We observe both apparent two-state unfolding and…

生物大分子 · 定量生物学 2009-01-21 Simon Mitternacht , Stefano Luccioli , Alessandro Torcini , Alberto Imparato , Anders Irbäck

Single molecule force spectroscopy reveals unfolding of domains in titin upon stretching. We provide a theoretical framework for these experiments by computing the phase diagrams for force-induced unfolding of single domain proteins using…

软凝聚态物质 · 物理学 2009-10-31 D. K. Klimov , D. Thirumalai

We present Molecular Dynamics simulations of a single stranded unprotonated DNA i-motif in explicit solvent. Our results indicate that the native structure in non-acidic solution at 300 K is unstable and completely vanishes on a time scale…

生物物理 · 物理学 2011-05-20 Jens Smiatek , Chun Chen , Dongsheng Liu , Andreas Heuer

Although known that single domain proteins fold and unfold by parallel pathways, demonstration of this expectation has been difficult to establish in experiments. Unfolding rate, $k_\mathrm{u}(f)$, as a function of force $f$, obtained in…

软凝聚态物质 · 物理学 2016-04-27 Pavel I. Zhuravlev , Michael Hinczewski , Shaon Chakrabarti , Susan Marqusee , D. Thirumalai

The refolding from stretched initial conformations of ubiquitin (PDB ID: 1ubq) under the quenched force is studied using the Go model and the Langevin dynamics. It is shown that the refolding decouples the collapse and folding kinetics. The…

生物大分子 · 定量生物学 2009-11-13 Mai Suan Li , Maksim Kouza , Chin-Kun Hu

A central goal of protein-folding theory is to predict the stochastic dynamics of transition paths --- the rare trajectories that transit between the folded and unfolded ensembles --- using only thermodynamic information, such as a…

生物大分子 · 定量生物学 2018-08-09 William M. Jacobs , Eugene I. Shakhnovich

Structural fluctuations in the thermal equilibrium of the kinesin motor domain are studied using a lattice protein model with Go interactions. By means of the multi-self-overlap ensemble (MSOE) Monte Carlo method and the principal component…

生物大分子 · 定量生物学 2007-06-04 Hiroo Kenzaki , Macoto Kikuchi

The mechanical unfolding of an engineered protein composed of eight domains of Ig27 is investigated by using atomic force microscopy. Exploiting a fluctuation relation, the equilibrium free energy as a function of the molecule elongation is…

软凝聚态物质 · 物理学 2008-05-29 A. Imparato , F. Sbrana , M. Vassalli

We have developed a new extended replica exchange method to study thermodynamics of a system in the presence of external force. Our idea is based on the exchange between different force replicas to accelerate the equilibrium process. We…

生物大分子 · 定量生物学 2009-11-13 Maksim Kouza , Chin-Kun Hu , Mai Suan Li

We study the mechanical unfolding pathways of the $FnIII_{10}$ domain of fibronectin by means of an Ising--like model, using both constant force and constant velocity protocols. At high forces and high velocities our results are consistent…

软凝聚态物质 · 物理学 2010-08-16 M. Caraglio , A. Imparato , A. Pelizzola

The mechanical unfolding of proteins is investigated by extending the Wako-Saito-Munoz-Eaton model, a simplified protein model with binary degrees of freedom, which has proved successful in describing the kinetics of protein folding. Such a…

软凝聚态物质 · 物理学 2007-05-23 A. Imparato , A. Pelizzola , M. Zamparo

Some phase space transport properties for a conservative bouncer model are studied. The dynamics of the model is described by using a two-dimensional measure preserving mapping for the variables velocity and time. The system is…

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