Monera O D, Sönnichsen F D, Hicks L, Kay C M, Hodges R S
Department of Biochemistry, University of Alberta, Edmonton, Canada.
Protein Eng. 1996 Apr;9(4):353-63. doi: 10.1093/protein/9.4.353.
The objective of this study was to investigate the positional effect of hydrophobic interactions in the alpha-helical interface in controlling the formation of two-stranded and four-stranded coiled-coils. Two disulfide-bridged antiparallel coiled-coils were designed which differ only in the position of a single Ala residue in the middle heptad: in peptide 2H the Ala residues are in register (in the same rung), while in peptide 4H they are not. Data from size-exclusion chromatography and sedimentation equilibrium experiments showed that under benign conditions peptides 2H and 4H were two-stranded and four-stranded coiled-coils respectively. These results, in conjunction with molecular modeling studies, suggests that when four Ala residues are in the same plane of a potential four-stranded coiled-coil, the small side chains of Ala would create a large cavity in the hydrophobic interface of the potential four-stranded structure which is destabilizing and favors the two-stranded, disulfide-bridged coiled-coil. In contrast, an alternating Leu-Ala hydrophobic packing in the two planes distributes the potential cavity over a larger region, which may be partially filled by minor adjustments of the neighboring Leu side chains. As a result, there is still sufficient hydrophobic contact to maintain the four stranded structure.
本研究的目的是探究α-螺旋界面中疏水相互作用的位置效应在控制双链和四链卷曲螺旋形成方面的作用。设计了两个二硫键桥连的反平行卷曲螺旋,它们仅在中间七肽中单个丙氨酸残基的位置上有所不同:在肽2H中,丙氨酸残基对齐(在同一梯级),而在肽4H中则不对齐。尺寸排阻色谱和沉降平衡实验的数据表明,在温和条件下,肽2H和4H分别为双链和四链卷曲螺旋。这些结果与分子模拟研究相结合表明,当四个丙氨酸残基处于潜在四链卷曲螺旋的同一平面时,丙氨酸的小侧链会在潜在四链结构的疏水界面中形成一个大空腔,这会使结构不稳定并有利于双链、二硫键桥连的卷曲螺旋。相反,两个平面中亮氨酸-丙氨酸的交替疏水堆积将潜在空腔分布在更大的区域,相邻亮氨酸侧链的微小调整可能会部分填充该区域。结果,仍有足够的疏水接触来维持四链结构。