Geometrical and sequence characteristics of α-helices in globular proteins

被引:97
作者
Kumar, S [1 ]
Bansal, M [1 ]
机构
[1] Indian Inst Sci, Mol Biophys Unit, Bangalore 560012, Karnataka, India
关键词
D O I
10.1016/S0006-3495(98)77634-9
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Understanding the sequence-structure relationships in globular proteins is important for reliable protein structure prediction and de novo design. Using a database of 1131 alpha-helices with nonidentical sequences from 205 nonhomologous globular protein chains, we have analyzed structural and sequence characteristics of alpha-helices. We find that geometries of more than 99% of all the alpha-helices can be simply characterised as being linear, curved, or kinked. Only a small number of cr-helices (similar to 4%) show sharp localized bends in their middle regions, and thus are classified as kinked. Approximately three-fourths (similar to 73%) of the alpha-helices in globular proteins show varying degrees of smooth curvature, with a mean radius of curvature of 65 +/- 33 Angstrom; longer helices are less curved. Computation of helix accessibility to the solvent indicates that nearly two-thirds of the helices (similar to 66%) are largely buried in the protein core, and the length and geometry of the helices are not correlated with their location in the protein globule. However, the amino acid compositions and propensities of individual amino acids to occur in alpha-helices Vary with their location in the protein globule, their geometries, and their lengths. In particular, Gin, Glu, Lys, and Arg are found more often in helices near the surface of globular proteins. Interestingly, kinks often seem to occur in regions where amino acids with low helix propensities (e.g., beta-branched and aromatic residues) cluster together, in addition to those associated with the occurrence of proline residues. Hence the propensities of individual amino acids to occur in a given secondary structure depend not only on conformation but also on its length, geometry, and location in the protein globule.
引用
收藏
页码:1935 / 1944
页数:10
相关论文
共 31 条
[1]  
ARGOS P, 1982, INT J PEPT PROT RES, V19, P380
[2]   STRUCTURE OF THE CO1E1 ROP PROTEIN AT 1.7 A RESOLUTION [J].
BANNER, DW ;
KOKKINIDIS, M ;
TSERNOGLOU, D .
JOURNAL OF MOLECULAR BIOLOGY, 1987, 196 (03) :657-675
[3]   HELIX GEOMETRY IN PROTEINS [J].
BARLOW, DJ ;
THORNTON, JM .
JOURNAL OF MOLECULAR BIOLOGY, 1988, 201 (03) :601-619
[4]   PROTEIN DATA BANK - COMPUTER-BASED ARCHIVAL FILE FOR MACROMOLECULAR STRUCTURES [J].
BERNSTEIN, FC ;
KOETZLE, TF ;
WILLIAMS, GJB ;
MEYER, EF ;
BRICE, MD ;
RODGERS, JR ;
KENNARD, O ;
SHIMANOUCHI, T ;
TASUMI, M .
JOURNAL OF MOLECULAR BIOLOGY, 1977, 112 (03) :535-542
[5]   SOLVENT-INDUCED DISTORTIONS AND THE CURVATURE OF ALPHA-HELICES [J].
BLUNDELL, T ;
BARLOW, D ;
BORKAKOTI, N ;
THORNTON, J .
NATURE, 1983, 306 (5940) :281-283
[6]   THE ALPHA-HELIX AS SEEN FROM THE PROTEIN TERTIARY STRUCTURE - A 3-D STRUCTURAL CLASSIFICATION [J].
BLUNDELL, TL ;
ZHU, ZY .
BIOPHYSICAL CHEMISTRY, 1995, 55 (1-2) :167-184
[7]   PEPTIDE-BOND DISTORTIONS AND THE CURVATURE OF ALPHA-HELICES [J].
CHAKRABARTI, P ;
BERNARD, M ;
REES, DC .
BIOPOLYMERS, 1986, 25 (06) :1087-1093
[8]   LARGE DIFFERENCES IN THE HELIX PROPENSITIES OF ALANINE AND GLYCINE [J].
CHAKRABARTTY, A ;
SCHELLMAN, JA ;
BALDWIN, RL .
NATURE, 1991, 351 (6327) :586-588
[9]   PREDICTION OF PROTEIN STRUCTURAL CLASSES [J].
CHOU, KC ;
ZHANG, CT .
CRITICAL REVIEWS IN BIOCHEMISTRY AND MOLECULAR BIOLOGY, 1995, 30 (04) :275-349
[10]  
Creighton T.E., 1993, PROTEINS STRUCTURE M, V2nd