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扩展的转角构象:α-转角中的表征及序列-结构对应关系及其对螺旋折叠的影响

Expanded turn conformations: characterization and sequence-structure correspondence in alpha-turns with implications in helix folding.

作者信息

Dasgupta Bhaskar, Pal Lipika, Basu Gautam, Chakrabarti Pinak

机构信息

Department of Biochemistry, Bose Institute, Calcutta, India.

出版信息

Proteins. 2004 May 1;55(2):305-15. doi: 10.1002/prot.20064.

DOI:10.1002/prot.20064
PMID:15048823
Abstract

Like the beta-turns, which are characterized by a limiting distance between residues two positions apart (i, i+3), a distance criterion (involving residues at positions i and i+4) is used here to identify alpha-turns from a database of known protein structures. At least 15 classes of alpha-turns have been enumerated based on the location in the phi,psi space of the three central residues (i+1 to i+3)-one of the major being the class AAA, where the residues occupy the conventional helical backbone torsion angles. However, moving towards the C-terminal end of the turn, there is a shift in the phi,psi angles towards more negative phi, such that the electrostatic repulsion between two consecutive carbonyl oxygen atoms is reduced. Except for the last position (i+4), there is not much similarity in residue composition at different positions of hydrogen and non-hydrogen bonded AAA turns. The presence or absence of Pro at i+1 position of alpha- and beta-turns has a bearing on whether the turn is hydrogen-bonded or without a hydrogen bond. In the tertiary structure, alpha-turns are more likely to be found in beta-hairpin loops. The residue composition at the beginning of the hydrogen bonded AAA alpha-turn has similarity with type I beta-turn and N-terminal positions of helices, but the last position matches with the C-terminal capping position of helices, suggesting that the existence of a "helix cap signal" at i+4 position prevents alpha-turns from growing into helices. Our results also provide new insights into alpha-helix nucleation and folding.

摘要

与β-转角类似,其特征是相隔两个位置(i,i + 3)的残基之间有一个极限距离,这里使用一个距离标准(涉及位置i和i + 4的残基)从已知蛋白质结构数据库中识别α-转角。基于三个中心残基(i + 1至i + 3)在φ,ψ空间中的位置,已经列举了至少15类α-转角——其中主要的一类是AAA类,其中残基占据传统的螺旋主链扭转角。然而,朝着转角的C末端移动时,φ,ψ角向更负的φ方向偏移,从而减少了两个连续羰基氧原子之间的静电排斥。除了最后一个位置(i + 4),在氢键结合和非氢键结合的AAA转角的不同位置,残基组成没有太多相似性。α-转角和β-转角在i + 1位置是否存在脯氨酸,关系到该转角是否有氢键。在三级结构中,α-转角更可能出现在β-发夹环中。氢键结合的AAAα-转角起始处的残基组成与I型β-转角和螺旋的N末端位置相似,但最后一个位置与螺旋的C末端封端位置匹配,这表明在i + 4位置存在“螺旋封端信号”可阻止α-转角生长为螺旋。我们的结果还为α-螺旋成核和折叠提供了新的见解。

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