Bang Duhee, Gribenko Alexey V, Tereshko Valentina, Kossiakoff Anthony A, Kent Stephen B, Makhatadze George I
Institute for Biophysical Dynamics, Center for Integrative Science, 929 East 57th Street, The University of Chicago, Chicago, Illinois 60637, USA.
Nat Chem Biol. 2006 Mar;2(3):139-43. doi: 10.1038/nchembio766. Epub 2006 Jan 30.
The alpha-helix is a fundamental protein structural motif and is frequently terminated by a glycine residue. Explanations for the predominance of glycine at the C-cap terminal portions of alpha-helices have invoked uniquely favorable energetics of this residue in a left-handed conformation or enhanced solvation of the peptide backbone because of the absence of a side chain. Attempts to quantify the contributions of these two effects have been made previously, but the issue remains unresolved. Here we have used chemical protein synthesis to dissect the energetic basis of alpha-helix termination by comparing a series of ubiquitin variants containing an L-amino acid or the corresponding D-amino acid at the C-cap Gly35 position. D-Amino acids can adopt a left-handed conformation without energetic penalty, so the contributions of conformational strain and backbone solvation can thus be separated. Analysis of the thermodynamic data revealed that the preference for glycine at the C' position of a helix is predominantly a conformational effect.
α-螺旋是一种基本的蛋白质结构基序,常常以甘氨酸残基作为终止。对于α-螺旋C端帽端部分甘氨酸占主导的现象,其解释涉及该残基在左手构象中独特的有利能量学,或者由于没有侧链而增强了肽主链的溶剂化作用。此前曾尝试量化这两种效应的贡献,但该问题仍未解决。在这里,我们通过化学蛋白质合成,比较了一系列在C端帽端Gly35位置含有L-氨基酸或相应D-氨基酸的泛素变体,来剖析α-螺旋终止的能量基础。D-氨基酸可以采用左手构象而无需能量代价,因此可以分离构象应变和主链溶剂化的贡献。对热力学数据的分析表明,螺旋C'位置对甘氨酸的偏好主要是一种构象效应。