Lee Darin L, Ivaninskii Sergei, Burkhard Peter, Hodges Robert S
Department of Biochemistry, University of Alberta, Edmonton, Alberta T6G 2H7, Canada.
Protein Sci. 2003 Jul;12(7):1395-405. doi: 10.1110/ps.0241403.
We determined the 1.17 A resolution X-ray crystal structure of a hybrid peptide based on sequences from coiled-coil regions of the proteins GCN4 and cortexillin I. The peptide forms a parallel homodimeric coiled-coil, with C(alpha) backbone geometry similar to GCN4 (rmsd value 0.71 A). Three stabilizing interactions have been identified: a unique hydrogen bonding-electrostatic network not previously observed in coiled-coils, and two other hydrophobic interactions involving leucine residues at positions e and g from both g-a' and d-e' interchain interactions with the hydrophobic core. This is also the first report of the quantitative significance of these interactions. The GCN4/cortexillin hybrid surprisingly has two interchain Glu-Lys' ion pairs that form a hydrogen bonding network with the Asn residues in the core. This network, which was not observed for the reversed Lys-Glu' pair in GCN4, increases the combined stability contribution of each Glu-Lys' salt bridge across the central Asn15-Asn15' core to approximately 0.7 kcal/mole, compared to approximately 0.4 kcal mole(-1) from a Glu-Lys' salt bridge on its own. In addition to electrostatic and hydrogen bonding stabilization of the coiled-coil, individual leucine residues at positions e and g in the hybrid peptide also contribute to stability by 0.7 kcal/mole relative to alanine. These interactions are of critical importance to understanding the stability requirements for coiled-coil folding and in modulating the stability of de novo designed macromolecules containing this motif.
我们确定了一种基于蛋白质GCN4和皮层肌动蛋白I卷曲螺旋区域序列的杂合肽的1.17埃分辨率X射线晶体结构。该肽形成平行同二聚体卷曲螺旋,其Cα主链几何结构与GCN4相似(均方根偏差值为0.71埃)。已确定三种稳定相互作用:一种是卷曲螺旋中以前未观察到的独特氢键 - 静电网络,另外两种是疏水相互作用,涉及来自g - a'和d - e'链间相互作用的e和g位置的亮氨酸残基与疏水核心。这也是这些相互作用定量意义的首次报道。令人惊讶的是,GCN4/皮层肌动蛋白杂合体有两个链间Glu - Lys'离子对,它们与核心中的Asn残基形成氢键网络。在GCN4中,反向的Lys - Glu'对未观察到这种网络,与单独的Glu - Lys'盐桥贡献约0.4千卡/摩尔相比,该网络使每个穿过中心Asn15 - Asn15'核心的Glu - Lys'盐桥的综合稳定性贡献增加到约0.7千卡/摩尔。除了卷曲螺旋的静电和氢键稳定作用外,杂合肽中e和g位置的单个亮氨酸残基相对于丙氨酸也对稳定性贡献0.7千卡/摩尔。这些相互作用对于理解卷曲螺旋折叠的稳定性要求以及调节含有该基序的从头设计大分子的稳定性至关重要。