DESTABILIZATION OF A PROTEIN HELIX BY ELECTROSTATIC INTERACTIONS

被引:30
|
作者
WALTER, S
HUBNER, B
HAHN, U
SCHMID, FX
机构
[1] UNIV BAYREUTH,BIOCHEM LAB,D-95440 BAYREUTH,GERMANY
[2] UNIV LUBECK,INST BIOCHEM,D-23538 LUBECK,GERMANY
关键词
PROTEIN STABILITY; PROTEIN FOLDING; PROTEIN ENGINEERING; ELECTROSTATIC INTERACTIONS; ALPHA-HELIX;
D O I
10.1006/jmbi.1995.0480
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
Electrostatic interactions between charged residues and the helix dipole in a protein were investigated by protein engineering methods. In ribonuclease T-1, two surface-exposed acidic residues (Glu28 and Asp29) are located near the carboxyl terminus of the cc-helix between residues 13 and 29. They were replaced, individually and in concert, by the uncharged amides Gln28 and Asn29, and the stabilities of the wild-type protein and its variants were determined as a function of pH. The effects of the two mutations are additive. Either one leads to a marginal destabilization by 0.7 kJ/mol at pH 2 but to a strong stabilization by about 3.2 kJ/mol at pH 7. This suggests that the deprotonations of Glu28 and Asp29 reduce the free energy of stabilization of folded ribonuclease T-1 by about 4 kJ/mol each. This destabilization is probably caused by unfavorable electrostatic interactions of Glu28 and Asp29 with the negative end of the helix dipole. The activation energies for the unfolding of the different variants of ribonuclease T-1 change in parallel with the differences in the thermodynamic stability when the pH is varied. This indicates that the unfavorable electrostatic interactions of Glu28 and Asp29 are lost very early in unfolding, and are not present in the activated state of unfolding. (C) 1995 Academic Press Limited
引用
收藏
页码:133 / 143
页数:11
相关论文
共 50 条
  • [31] Direct measurement of protein electrostatic interactions in cells
    Long, Dong
    MAGNETIC RESONANCE LETTERS, 2022, 2 (01) : 59 - 60
  • [32] Contribution of Electrostatic Interactions to Protein Folding Reaction
    Kim, Dae Won
    Park, Soon-Ho
    JOURNAL OF THE KOREAN CHEMICAL SOCIETY-DAEHAN HWAHAK HOE JEE, 2014, 58 (06): : 560 - 568
  • [34] Direct measurement of protein electrostatic interactions in cells
    Dong Long
    Magnetic Resonance Letters, 2022, 2 (01) : 59 - 60
  • [35] Role of electrostatic interactions during protein ultrafiltration
    Rohani, Mahsa M.
    Zydney, Andrew L.
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2010, 160 (1-2) : 40 - 48
  • [36] Electrostatic Selectivity in Protein-Nanoparticle Interactions
    Chen, Kaimin
    Xu, Yisheng
    Rana, Subinoy
    Miranda, Oscar R.
    Dubin, Paul L.
    Rotello, Vincent M.
    Sun, Lianhong
    Guo, Xuhong
    BIOMACROMOLECULES, 2011, 12 (07) : 2552 - 2561
  • [37] Electrostatic interactions as governing the fouling in protein microfiltration
    Ouammou, M
    Tijani, N
    Calvo, JI
    Palacio, L
    Prádanos, P
    Hernández, A
    JOURNAL DE PHYSIQUE IV, 2005, 123 : 371 - 375
  • [38] Activation of microhelix charging by localized helix destabilization
    Alexander, RW
    Nordin, BE
    Schimmel, P
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (21) : 12214 - 12219
  • [39] On the role of electrostatic interactions in the design of protein-protein interfaces
    Sheinerman, FB
    Honig, B
    JOURNAL OF MOLECULAR BIOLOGY, 2002, 318 (01) : 161 - 177
  • [40] Protein-Protein Recognition Control by Modulating Electrostatic Interactions
    Han, Song
    Yin, Shijin
    Yi, Hong
    Mouhat, Stephanie
    Qiu, Su
    Cao, Zhijian
    Sabatier, Jean-Marc
    Wu, Yingliang
    Li, Wenxin
    JOURNAL OF PROTEOME RESEARCH, 2010, 9 (06) : 3118 - 3125