Low-temperature heat capacity of biomacromolecules and the entropic cost of bound water in proteins and nucleic acids (DNA)

被引:20
|
作者
Mrevlishvili, GM [1 ]
机构
[1] Tbilisi State Univ, Dept Phys, GE-380028 Tbilisi, Georgia
关键词
bound water; entropic cost; heat capacity; nucleic acids (DNA); proteins;
D O I
10.1016/S0040-6031(97)00329-8
中图分类号
O414.1 [热力学];
学科分类号
摘要
On the basis of the heat capacity data for proteins and DNA, obtained in the wide temperature range (2-300 K), the amount of the entropic cost of bound water in biomacromolecules is determined. The entropic cost of transferring a single water molecule from the liquid to a site of biopolymers is: 66.9, 58.1, 10.4 and 15.5 J mol(-1) K-1 for fibrous protein (collagen), nucleic acid (double helical DNA), globular protein (Ribonuclease A), desoxynucleotides (d(AMP), d(TMP), d(GMP), d(CMP)) mechanical mixture and DNA polynucleotide chains in the state of statistical coils, respectively. These correspond to transfer-free energy costs as follows (at 298 K): 19.15, 17.5, 3.7 and 4.6 kT mol(-1), respectively. We emphasize that the transfer entropy values determined here are not to be confused with the "entropy of hydration" of polar and nonpolar groups in biopolymers, which are relevant to the thermodynamics of protein folding or DNA double helix winding-unwinding. (C) 1998 Published by Elsevier Science B.V.
引用
收藏
页码:49 / 54
页数:6
相关论文
共 50 条
  • [41] Low-temperature heat capacity of α and γ polymorphs of glycine
    V. A. Drebushchak
    Yu. A. Kovalevskaya
    I. E. Paukov
    E. V. Boldyreva
    Journal of Thermal Analysis and Calorimetry, 2003, 74 : 109 - 120
  • [42] Low-temperature heat capacity and magnetization of ferromagnets
    V. V. Novikov
    Physics of the Solid State, 2009, 51 : 2101 - 2104
  • [43] LOW-TEMPERATURE HEAT-CAPACITY OF TUNGSTEN BORIDES
    BOLGAR, AS
    BLINDER, AV
    NOVOSELETSKAYA, LM
    KLOCHKOV, LA
    LYASHCHENKO, AB
    ZHURNAL FIZICHESKOI KHIMII, 1988, 62 (02): : 510 - 513
  • [44] Low-temperature heat capacity of 1-bromoperfluorooctane
    Varushchenko, RM
    Druzhinina, AI
    Sorkin, EL
    JOURNAL OF CHEMICAL THERMODYNAMICS, 1997, 29 (06): : 623 - 637
  • [45] The low-temperature heat capacity of some lanthanide zirconates
    Lutique, S
    Javorsky, P
    Konings, RJM
    Krupa, JC
    van Genderen, CG
    van Miltenburg, JC
    Wastin, F
    JOURNAL OF CHEMICAL THERMODYNAMICS, 2004, 36 (07): : 609 - 618
  • [46] Low-temperature heat capacity of heulandite: comparison with clinoptilolite
    Drebushchak, VA
    Naumov, VN
    Nogteva, VV
    Belitsky, IA
    Paukov, IE
    THERMOCHIMICA ACTA, 2000, 348 (1-2) : 33 - 40
  • [47] Low-temperature heat capacity and thermodynamic functions of laumontite
    Paukov, IE
    Fursenko, BA
    GEOKHIMIYA, 1998, (12): : 1301 - 1303
  • [48] LOW-TEMPERATURE HEAT CAPACITY OF A DIPOLE SPIN GLASS
    Busiello, G.
    Saburova, R. V.
    Gazeeva, E. V.
    Garnaeva, I. R.
    RUSSIAN PHYSICS JOURNAL, 2010, 53 (04) : 336 - 340
  • [49] Low-temperature heat capacity and thermodynamic functions of GaTe
    A. V. Tyurin
    K. S. Gavrichev
    V. P. Zlomanov
    N. N. Smirnova
    Inorganic Materials, 2006, 42 : 855 - 858
  • [50] HEAT-CAPACITY OF VANADIUM OXIDES AT LOW-TEMPERATURE
    MCWHAN, DB
    REMEIKA, JP
    MAITA, JP
    OKINAKA, H
    KOSUGE, K
    KACHI, S
    PHYSICAL REVIEW B, 1973, 7 (01): : 326 - 332