Role of water on unfolding kinetics of helical peptides studied by molecular dynamics simulations

被引:43
作者
Doruker, P
Bahar, I
机构
[1] BOGAZICI UNIV, SCH ENGN, POLYMER RES CTR, DEPT CHEM ENGN, TR-80815 BEBEK, ISTANBUL, TURKEY
[2] TUBITAK, ADV POLYMER MAT RES CTR, TR-80815 BEBEK, ISTANBUL, TURKEY
关键词
D O I
10.1016/S0006-3495(97)78889-1
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Molecular dynamics simulations have been carried out with four polypeptides, Ala(13), Val(13), Ser(13), and Ala(4)Gly(5)Ala(,) in vacuo and with explicit hydration, The unfolding of the polypeptides, which are initially fully alpha-helix in conformation, has been monitored during trajectories of 0.3 ns at 350 K, A rank of Ala < Val < Ser < Gly is found in the order of increasing rate of unwinding, The unfolding of Ala(13) and Val(13) is completed in hundreds of picoseconds, while that of Ser(13) is about one order of magnitude faster, The helix content of the peptide containing glycine residues falls to zero within a few picoseconds, Ramachandran plots indicate quite distinct equilibrium distributions and time evolution of dihedral angles in water and in vacuum for each residue type. The unfolding of polyalanine and polyvaline helices is accelerated due to solvation, In contrast, polyserine is more stable in water compared to vacuum, because its side chains can form intramolecular hydrogen bonds with the backbone more readily in vacuum, which disrupts the helix. Distribution functions of the spatial and angular position of water molecules in the proximity of the polypeptide backbone polar groups reveal the stabilization of the coiled structures by hydration. The transition from helix to coil is characterized by the appearance of a new peak in the probability distribution at a specific location characteristic of hydrogen bond formation between water and backbone polar groups. No significant insertion of water molecules is observed at the precise onset of unwinding, while (i, i+3) hydrogen bond formation is frequently detected at the initiation of alpha-helix unwinding.
引用
收藏
页码:2445 / 2456
页数:12
相关论文
共 47 条
[11]   STABILITY OF ALPHA-HELICES [J].
CHAKRABARTTY, A ;
BALDWIN, RL .
ADVANCES IN PROTEIN CHEMISTRY, VOL 46, 1995, 46 :141-176
[12]  
CHAKRABARTTY A, 1994, PROTEIN SCI, V3, P843
[13]   EMPIRICAL PREDICTIONS OF PROTEIN CONFORMATION [J].
CHOU, PY ;
FASMAN, GD .
ANNUAL REVIEW OF BIOCHEMISTRY, 1978, 47 :251-276
[14]   MOLECULAR-DYNAMICS SIMULATIONS OF HELIX DENATURATION [J].
DAGGETT, V ;
LEVITT, M .
JOURNAL OF MOLECULAR BIOLOGY, 1992, 223 (04) :1121-1138
[15]   A MOLECULAR-DYNAMICS SIMULATION OF POLYALANINE - AN ANALYSIS OF EQUILIBRIUM MOTIONS AND HELIX COIL TRANSITIONS [J].
DAGGETT, V ;
KOLLMAN, PA ;
KUNTZ, ID .
BIOPOLYMERS, 1991, 31 (09) :1115-1134
[16]   THEORETICAL EVIDENCE FOR DESTABILIZATION OF AN ALPHA-HELIX BY WATER INSERTION - MOLECULAR-DYNAMICS OF HYDRATED DECAALANINE [J].
DICAPUA, FM ;
SWAMINATHAN, S ;
BEVERIDGE, DL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1990, 112 (19) :6768-6771
[17]   THEORETICAL EVIDENCE FOR WATER INSERTION IN ALPHA-HELIX BENDING - MOLECULAR-DYNAMICS OF GLY30 AND ALA30 IN VACUO AND IN SOLUTION [J].
DICAPUA, FM ;
SWAMINATHAN, S ;
BEVERIDGE, DL .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1991, 113 (16) :6145-6155
[18]  
DORUKER P, 1993, COMPUT POLYMER SCI, V3, P87
[19]  
Gunsteren W.F.V., 1996, Biomolecular Simulation: The GROMOS96 Manual and User Guide
[20]   DIFFERENTIAL HELIX PROPENSITY OF SMALL APOLAR SIDE-CHAINS STUDIED BY MOLECULAR-DYNAMICS SIMULATIONS [J].
HERMANS, J ;
ANDERSON, AG ;
YUN, RH .
BIOCHEMISTRY, 1992, 31 (24) :5646-5653