Effect of phosphorylation on α-helix stability as a function of position

被引:114
作者
Andrew, CD
Warwicker, J
Jones, GR
Doig, AJ
机构
[1] UMIST, Dept Biomol Sci, Manchester M60 1QD, Lancs, England
[2] Daresbury Lab, Warrington WA4 4AD, Cheshire, England
关键词
D O I
10.1021/bi0113216
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
We have investigated the effect of placing phosphoserine at the N-cap, N1, N2, N3, and interior position in alanine-based alpha-helical peptides. Helix contents of each peptide were measured by CD spectroscopy and titrations performed to determine pK(a) values. Data were analyzed with modified Lifson-Roig theory to determine helix-coil parameters (n, n(1), n(2), n(3), and w) and free energy changes for phosphoserine at each helical position. Results are given for a -1 and -2 phosphoserine charge state. Results show that phosphoserine stabilizes at the N-terminal positions by as much as 2.3 kcal.mol(-1), while destabilizes in the helix interior by 1.2 kcal.mol(-1). relative to serine. The rank order of free energies relative to serine at each position is N2 > N3 > N1 > N-cap > interior. Moreover, -2 phosphoserine is the most preferred residue known at each of these N-terminal positions. Experimental pK(a) values for the -1 to -2 phosphoserine transition are in the order N2 < N-cap < N1 < N3 < interior. This order agrees well with electrostatics calculations carried out with phosphoserine at the N-terminal positions and interior positions. Combining these with calculations at the C3, C2, C1, and C-cap positions gives results for phosphoserine along the length of the helix. We see a transition from phosphoserine stabilization at the N-terminus to destabilization at the C-terminus and can explain this in terms of the balance of protein solvation, favorable interactions, and dehydration. These results give insight into the phosphorylatable control of biological systems through positive or negative changes in stability.
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页码:1897 / 1905
页数:9
相关论文
共 40 条
  • [1] ARGOS P, 1982, INT J PEPT PROT RES, V19, P380
  • [2] DISSECTION OF HELIX CAPPING IN T4 LYSOZYME BY STRUCTURAL AND THERMODYNAMIC ANALYSIS OF 6 AMINO-ACID SUBSTITUTIONS AT THR 59
    BELL, JA
    BECKTEL, WJ
    SAUER, U
    BAASE, WA
    MATTHEWS, BW
    [J]. BIOCHEMISTRY, 1992, 31 (14) : 3590 - 3596
  • [3] HELIX CAPPING PROPENSITIES IN PEPTIDES PARALLEL THOSE IN PROTEINS
    CHAKRABARTTY, A
    DOIG, AJ
    BALDWIN, RL
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1993, 90 (23) : 11332 - 11336
  • [4] AROMATIC SIDE-CHAIN CONTRIBUTION TO FAR-ULTRAVIOLET CIRCULAR-DICHROISM OF HELICAL PEPTIDES AND ITS EFFECT ON MEASUREMENT OF HELIX PROPENSITIES
    CHAKRABARTTY, A
    KORTEMME, T
    PADMANABHAN, S
    BALDWIN, RL
    [J]. BIOCHEMISTRY, 1993, 32 (21) : 5560 - 5565
  • [5] CONFORMATIONAL PARAMETERS FOR AMINO-ACIDS IN HELICAL, BETA-SHEET, AND RANDOM COIL REGIONS CALCULATED FROM PROTEINS
    CHOU, PY
    FASMAN, GD
    [J]. BIOCHEMISTRY, 1974, 13 (02) : 211 - 222
  • [6] Effect of the N2 residue on the stability of the α-helix for all 20 amino acids
    Cochran, DAE
    Doig, AJ
    [J]. PROTEIN SCIENCE, 2001, 10 (07) : 1305 - 1311
  • [7] Effect of the N1 residue on the stability of the α-helix for all 20 amino acids
    Cochran, DAE
    Penel, S
    Doig, AJ
    [J]. PROTEIN SCIENCE, 2001, 10 (03) : 463 - 470
  • [8] DASGUPTA S, 1993, INT J PEPT PROT RES, V41, P499
  • [9] DOIG AJ, 1995, PROTEIN SCI, V4, P1325, DOI 10.1002/pro.5560040708
  • [10] DOIG AJ, 1994, BIOCHEMISTRY-US, V33, P3396, DOI 10.1021/bi00177a033