Effect of the thermostat in the molecular dynamics simulation on the folding of the model protein chignolin

被引:9
|
作者
Fuzo, Carlos A. [1 ]
Degreve, Leo [1 ]
机构
[1] Univ Sao Paulo, Grp Simulacao Mol, Dept Quim, Fac Filosofia Ciencias & Letras Ribeirao Preto, BR-14040901 Ribeirao Preto, SP, Brazil
基金
巴西圣保罗研究基金会;
关键词
Berendsen thermostat; Chignolin; Minimally invasive thermostat; Molecular dynamics; Protein folding; ALGORITHM;
D O I
10.1007/s00894-011-1282-2
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Molecular dynamics simulations of the model protein chignolin with explicit solvent were carried out, in order to analyze the influence of the Berendsen thermostat on the evolution and folding of the peptide. The dependence of the peptide behavior on temperature was tested with the commonly employed thermostat scheme consisting of one thermostat for the protein and another for the solvent. The thermostat coupling time of the protein was increased to infinity, when the protein is not in direct contact with the thermal bath, a situation known as minimally invasive thermostat. In agreement with other works, it was observed that only in the last situation the instantaneous temperature of the model protein obeys a canonical distribution. As for the folding studies, it was shown that, in the applications of the commonly utilized thermostat schemes, the systems are trapped in local minima regions from which it has difficulty escaping. With the minimally invasive thermostat the time that the protein needs to fold was reduced by two to three times. These results show that the obstacles to the evolution of the extended peptide to the folded structure can be overcome when the temperature of the peptide is not directly controlled.
引用
收藏
页码:2785 / 2794
页数:10
相关论文
共 50 条
  • [1] Effect of the thermostat in the molecular dynamics simulation on the folding of the model protein chignolin
    Carlos A. Fuzo
    Léo Degrève
    [J]. Journal of Molecular Modeling, 2012, 18 : 2785 - 2794
  • [2] Temperature and pressure denaturation of chignolin: Folding and unfolding simulation by multibaric-multithermal molecular dynamics algorithm
    Okumura, Hisashi
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2012, 243
  • [3] Temperature and pressure denaturation of chignolin: Folding and unfolding simulation by multibaric-multithermal molecular dynamics method
    Okumura, Hisashi
    [J]. PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2012, 80 (10) : 2397 - 2416
  • [4] Stabilities and Dynamics of Protein Folding Nuclei by Molecular Dynamics Simulation
    Song, Yong-Shun
    Zhou, Xin
    Zheng, Wei-Mou
    Wang, Yan-Ting
    [J]. COMMUNICATIONS IN THEORETICAL PHYSICS, 2017, 68 (01) : 137 - 148
  • [5] Stabilities and Dynamics of Protein Folding Nuclei by Molecular Dynamics Simulation
    宋永顺
    周昕
    郑伟谋
    王延颋
    [J]. Communications in Theoretical Physics, 2017, 68 (07) : 137 - 148
  • [6] Protein-folding dynamics: Overview of molecular simulation techniques
    Scheraga, Harold A.
    Khalili, Mey
    Liwo, Adam
    [J]. ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 2007, 58 : 57 - 83
  • [7] Molecular Dynamics Simulation of Protein Folding with Supersecondary Structure Constraints
    Zhi Rong Sun
    Yan Cui
    Lun Jiang Ling
    Qing Guo
    Run Sheng Chen
    [J]. Journal of Protein Chemistry, 1998, 17 : 765 - 769
  • [8] Protein Folding upon Binding Revealed by Molecular Dynamics Simulation
    Neale, Chris
    Pomes, Regis
    Sterne-Marr, Rachel
    Garcia, Angel
    [J]. BIOPHYSICAL JOURNAL, 2017, 112 (03) : 54A - 54A
  • [9] Molecular dynamics simulation of protein folding with supersecondary structure constraints
    Sun, ZR
    Cui, Y
    Ling, LJ
    Guo, Q
    Chen, RS
    [J]. JOURNAL OF PROTEIN CHEMISTRY, 1998, 17 (08): : 765 - 769
  • [10] Molecular dynamics of protein folding
    Frenkel, ZM
    Melker, AI
    [J]. SIXTH INTERNATIONAL WORKSHOP ON NONDESTRUCTIVE TESTING AND COMPUTER SIMULATIONS IN SCIENCE AND ENGINEERING, 2003, 5127 : 63 - 75