Empirical relationships between protein structure and carboxyl pKa values in proteins

被引:187
作者
Forsyth, WR
Antosiewicz, JM
Robertson, AD [1 ]
机构
[1] Univ Iowa, Dept Biochem, Iowa City, IA 52242 USA
[2] Warsaw Univ, Dept Biophys, Warsaw, Poland
关键词
ionization; electrostatic; charge;
D O I
10.1002/prot.10174
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
Relationships between protein structure and ionization of carboxyl groups were investigated in 24 proteins of known structure and for which 115 aspartate and 97 glutamate pK(a) values are known. Mean pK(a) values for aspartates and glutamates are less than or equal to 3.4 (+/-1.0) and 4.1 (+/-0.8), respectively. For aspartates, mean pK(a) values are 3.9 (+/- 1.0) and 3.1 (+/-0.9) in acidic (pI < 5) and basic (pI > 8) proteins, respectively, while mean pKa values for glutamates are approximately 4.2 for acidic and basic proteins. Burial of carboxyl groups leads to dispersion in pK(a) values: pK(a) values for solvent-exposed groups show narrow distributions while values for buried groups range from < 2 to 6.7. Calculated electrostatic potentials at the carboxyl groups show modest correlations with experimental pK(a) values and these correlations are not improved by including simple surface-area-based terms to account for the effects of desolvation. Mean aspartate pKa values decrease with increasing numbers of hydrogen bonds but this is not observed at glutamates. Only 10 pK(a) values are > 5.5 and most are found in active sites or ligand-binding sites. These carboxyl groups are buried and usually accept no more than one hydrogen bond. Aspartates and glutamates at the N-termini of helices have mean pK(a) values of 2.8 (+/-0.5) and 3.4 (+/-0.6), respectively, about 0.6 units less than the overall mean values. (C) 2002Wiley-Liss, Inc.
引用
收藏
页码:388 / 403
页数:16
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共 127 条
  • [11] The Protein Data Bank
    Berman, HM
    Westbrook, J
    Feng, Z
    Gilliland, G
    Bhat, TN
    Weissig, H
    Shindyalov, IN
    Bourne, PE
    [J]. NUCLEIC ACIDS RESEARCH, 2000, 28 (01) : 235 - 242
  • [12] Bottcher C.J. F., 1973, THEORY ELECT POLARIZ, V1
  • [13] CHARMM - A PROGRAM FOR MACROMOLECULAR ENERGY, MINIMIZATION, AND DYNAMICS CALCULATIONS
    BROOKS, BR
    BRUCCOLERI, RE
    OLAFSON, BD
    STATES, DJ
    SWAMINATHAN, S
    KARPLUS, M
    [J]. JOURNAL OF COMPUTATIONAL CHEMISTRY, 1983, 4 (02) : 187 - 217
  • [14] POLAR HYDROGEN POSITIONS IN PROTEINS - EMPIRICAL ENERGY PLACEMENT AND NEUTRON-DIFFRACTION COMPARISON
    BRUNGER, AT
    KARPLUS, M
    [J]. PROTEINS-STRUCTURE FUNCTION AND GENETICS, 1988, 4 (02): : 148 - 156
  • [15] USE OF AMIDE H-1-NMR TITRATION SHIFTS FOR STUDIES OF POLYPEPTIDE CONFORMATION
    BUNDI, A
    WUTHRICH, K
    [J]. BIOPOLYMERS, 1979, 18 (02) : 299 - 311
  • [16] ENTRY OF ANIMAL VIRUSES AND MACROMOLECULES INTO CELLS
    CARRASCO, L
    [J]. FEBS LETTERS, 1994, 350 (2-3): : 151 - 154
  • [17] HISTIDINE PKA SHIFTS ACCOMPANYING THE INACTIVATING ASP121-] ASN SUBSTITUTION IN A SEMISYNTHETIC BOVINE PANCREATIC RIBONUCLEASE
    CEDERHOLM, MT
    STUCKEY, JA
    DOSCHER, MS
    LEE, L
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1991, 88 (18) : 8116 - 8120
  • [18] Determination of pKa values of carboxyl groups in the N-terminal domain of rat CD2:: Anomalous pKa of a glutamate on the ligand-binding surface
    Chen, HA
    Pfuhl, M
    McAlister, MSB
    Driscoll, PC
    [J]. BIOCHEMISTRY, 2000, 39 (23) : 6814 - 6824
  • [19] The role of acidic amino acid residues in the structural stability of snake cardiotoxins
    Chiang, CM
    Chang, SL
    Lin, HJ
    Wu, WG
    [J]. BIOCHEMISTRY, 1996, 35 (28) : 9177 - 9186
  • [20] Creighton T.E., 1993, PROTEINS STRUCTURE M, V2nd