Positional preference of proline in α-helices

被引:89
作者
Kim, MK [1 ]
Kang, YK [1 ]
机构
[1] Chungbuk Natl Univ, Dept Chem, Chungbuk 361763, South Korea
关键词
alpha-helices; conformational energy calculations; positional preference; proline;
D O I
10.1110/ps.8.7.1492
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
Conformational free energy calculations have been carried out for proline-containing alanine-based pentadecapeptides with the sequence Ac-(Ala)(n)-Pro-(Ala)(m)-NHMe, where n + m = 14, to figure out the positional preference of proline in alpha-helices. The relative free energy of each peptide was calculated by subtracting the free energy of the extended conformation from that of the alpha-helical one, which is used here as a measure of preference. The highest propensity is found for the peptide with proline at the N-terminus (i.e., Ncap + 1 position), and the next propensities are found at Ncap, N' (Ncap - 1), and C' (Ccap + 1) positions. These computed results are reasonably consistent with the positional propensities estimated from X-ray structures of proteins. The breaking in hydrogen bonds around proline is found to play a role in destabilizing alpha-helical conformations, which, however, provides the favored hydration of the corresponding N-H and C = O groups. The highest preference of proline at the beginning of alpha-helix appears to be due to the favored electrostatic and nonbonded energies between two residues preceding proline and the intrinsic stability of alpha-helical conformation of the proline residue itself as well as no disturbance in hydrogen bonds of alpha-helix by proline. The average free energy change for the substitution of Ala by Pro in a alpha-helix is computed to be 4.6 kcal/mol, which is in good agreement with the experimental value of similar to 4 kcal/mol estimated for an oligopeptide dimer and proteins of barnase and T4 lysozyme.
引用
收藏
页码:1492 / 1499
页数:8
相关论文
共 34 条
[1]   Helix capping [J].
Aurora, R ;
Rose, GD .
PROTEIN SCIENCE, 1998, 7 (01) :21-38
[2]   HELIX GEOMETRY IN PROTEINS [J].
BARLOW, DJ ;
THORNTON, JM .
JOURNAL OF MOLECULAR BIOLOGY, 1988, 201 (03) :601-619
[3]   DETERMINATION OF ALPHA-HELIX PROPENSITY WITHIN THE CONTEXT OF A FOLDED PROTEIN - SITES 44 AND 131 IN BACTERIOPHAGE-T4 LYSOZYME [J].
BLABER, M ;
ZHANG, XJ ;
LINDSTROM, JD ;
PEPIOT, SD ;
BAASE, WA ;
MATTHEWS, BW .
JOURNAL OF MOLECULAR BIOLOGY, 1994, 235 (02) :600-624
[4]  
CHOU KC, 1984, J AM CHEM SOC, V106, P3161, DOI 10.1021/ja00323a017
[5]   CONFORMATIONS OF PROLINE [J].
DETAR, DF ;
LUTHRA, NP .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1977, 99 (04) :1232-1244
[6]   SUBROUTINES FOR UNCONSTRAINED MINIMIZATION USING A MODEL TRUST-REGION APPROACH [J].
GAY, DM .
ACM TRANSACTIONS ON MATHEMATICAL SOFTWARE, 1983, 9 (04) :503-524
[7]  
Han SJ, 1997, B KOR CHEM SOC, V18, P899
[8]   ALPHA-HELIX STABILITY IN PROTEINS .2. FACTORS THAT INFLUENCE STABILITY AT AN INTERNAL POSITION [J].
HOROVITZ, A ;
MATTHEWS, JM ;
FERSHT, AR .
JOURNAL OF MOLECULAR BIOLOGY, 1992, 227 (02) :560-568
[9]   FLEXIBLE-GEOMETRY CONFORMATIONAL ENERGY MAPS FOR THE AMINO-ACID RESIDUE PRECEDING A PROLINE [J].
HURLEY, JH ;
MASON, DA ;
MATTHEWS, BW .
BIOPOLYMERS, 1992, 32 (11) :1443-1446
[10]  
KAN YK, 1999, J PEPT RES, V53, P30