Predicting the Thermodynamics and Kinetics of Helix Formation in a Cyclic Peptide Model

被引:26
|
作者
Damas, Joao M. [1 ]
Filipe, Luis C. S. [1 ]
Campos, Sara R. R. [1 ]
Lousa, Diana [1 ]
Victor, Bruno L. [1 ]
Baptista, Antonio M. [1 ]
Soares, Claudio M. [1 ]
机构
[1] Univ Nova Lisboa, Inst Tecnol Quim & Biol, P-2780157 Oeiras, Portugal
关键词
MOLECULAR-DYNAMICS SIMULATIONS; PROTEIN-FOLDING SIMULATIONS; EMPIRICAL FORCE-FIELDS; SECONDARY STRUCTURE; BIOMOLECULAR SIMULATIONS; DIELECTRIC-PROPERTIES; EQUILIBRIUM ENSEMBLE; COIL TRANSITION; WATER MODELS; TIME-SCALE;
D O I
10.1021/ct400529k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The peptide Ac-(cyclo-2,6)-R[KAAAD]-NH2 (cyc-RKAAAD) is a short cyclic peptide known to adopt a remarkably stable single turn alpha-helix in water. Due to its simplicity and the availability of thermodynamic and kinetic experimental data, cyc-RKAAAD poses as an ideal model for evaluating the aptness of current molecular dynamics (MD) simulation methodologies to accurately sample conformations that reproduce experimentally observed properties. In this work, we extensively sample the conformational space of cyc-RKAAAD using microsecond-timescale MD simulations. We characterize the peptide conformational preferences in terms of secondary structure propensities and, using Cartesian-coordinate principal component analysis (cPCA), construct its free energy landscape, thus obtaining a detailed weighted discrimination between the helical and nonhelical subensembles. The cPCA state discrimination, together with a Markov model built from it, allowed us to estimate the free energy of unfolding (-0.57 kJ/mol) and the relaxation time (similar to 0.435 mu s) at 298.15 K, which are in excellent agreement with the experimentally reported values (-0.22 kJ/mol and 0.42 mu s, Serrano, A. L.; Tucker, M. J.; Gai, F. J. Phys. Chem. B, 2011, 115, 7472-7478.). Additionally, we present simulations conducted using two enhanced sampling methods: replica-exchange molecular dynamics (REMD) and bias-exchange metadynamics (BE-MetaD). We compare the free energy landscape obtained by these two methods with the results from MD simulations and discuss the sampling and computational gains achieved. Overall, the results obtained attest to the suitability of modern simulation methods to explore the conformational behavior of peptide systems with a high level of realism.
引用
收藏
页码:5148 / 5157
页数:10
相关论文
共 50 条
  • [1] THERMODYNAMICS OF α-HELIX FORMATION
    Makhatadze, George I.
    PEPTIDE SOLVATION AND H-BONDS, 2005, 72 : 199 - 226
  • [2] KINETICS AND THERMODYNAMICS OF TRIPLE-HELIX FORMATION - EFFECTS OF IONIC-STRENGTH AND MISMATCHES
    ROUGEE, M
    FAUCON, B
    MERGNY, JL
    BARCELO, F
    GIOVANNANGELI, C
    GARESTIER, T
    HELENE, C
    BIOCHEMISTRY, 1992, 31 (38) : 9269 - 9278
  • [3] Empirical parameterization of a model for predicting peptide helix/coil equilibrium populations
    Andersen, NH
    Tong, H
    PROTEIN SCIENCE, 1997, 6 (09) : 1920 - 1936
  • [4] Helix formation in α/β-, α/γ-, and β/γ-hybrid peptide
    Baldauf, Carsten
    Guenther, Robert
    Hofmann, Hans-Joerg
    UNDERSTANDING BIOLOGY USING PEPTIDES, 2006, : 671 - +
  • [5] INTERPRETATION OF KINETICS OF HELIX FORMATION
    KALLENBACH, NR
    CROTHERS, DM
    MORTIMER, RG
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 1963, 11 (03) : 213 - &
  • [6] THERMODYNAMICS OF LEFT-HANDED HELIX FORMATION
    KLUMP, HH
    FEBS LETTERS, 1986, 196 (01) : 175 - 179
  • [7] Thermodynamics of peptide dimer formation
    Church, Matthew S.
    Ferry, Christine E.
    van Giessen, Alan E.
    JOURNAL OF CHEMICAL PHYSICS, 2012, 136 (24):
  • [8] Thermodynamics and kinetics of folding of a small peptide
    Hansmann, UHE
    Onuchic, JN
    JOURNAL OF CHEMICAL PHYSICS, 2001, 115 (03): : 1601 - 1606
  • [9] THERMODYNAMICS OF FORMATION OF THE PEPTIDE BOND
    ALEKSEEVA, TA
    PONOMAREV, VV
    ZHURNAL FIZICHESKOI KHIMII, 1964, 38 (05): : 1337 - 1340
  • [10] Thermodynamics and kinetics of aggregation for the GNNQQNY peptide
    Strodel, Birgit
    Whittleston, Chris S.
    Wales, David J.
    Journal of the American Chemical Society, 2007, 129 (51): : 16005 - 16014