Lu M, Shu W, Ji H, Spek E, Wang L, Kallenbach N R
Department of Biochemistry, Weill Medical College of Cornell University, New York, NY, 10021, USA.
J Mol Biol. 1999 May 14;288(4):743-52. doi: 10.1006/jmbi.1999.2707.
Capping interactions associated with specific sequences at or near the ends of alpha-helices are important determinants of the stability of protein secondary and tertiary structure. We investigate here the role of the helix-capping motif Ser-X-X-Glu, a sequence that occurs frequently at the N termini of alpha helices in proteins, on the conformation and stability of the GCN4 leucine zipper. The 1.8 A resolution crystal structure of the capped molecule reveals distinct conformations, packing geometries and hydrogen-bonding networks at the amino terminus of the two helices in the leucine zipper dimer. The free energy of helix stabilization associated with the hydrogen-bonding and hydrophobic interactions in this capping structure is -1.2 kcal/mol, evaluated from thermal unfolding experiments. A single cap thus contributes appreciably to stabilizing the terminated helix and thereby the native state. These results suggest that helix capping plays a further role in protein folding, providing a sensitive connector linking alpha-helix formation to the developing tertiary structure of a protein.
与α-螺旋末端或其附近特定序列相关的封端相互作用是蛋白质二级和三级结构稳定性的重要决定因素。我们在此研究螺旋封端基序Ser-X-X-Glu(该序列在蛋白质α-螺旋的N端频繁出现)对GCN4亮氨酸拉链的构象和稳定性的作用。封端分子的1.8埃分辨率晶体结构揭示了亮氨酸拉链二聚体中两个螺旋氨基末端不同的构象、堆积几何形状和氢键网络。通过热变性实验评估,这种封端结构中与氢键和疏水相互作用相关的螺旋稳定自由能为-1.2千卡/摩尔。因此,单个封端对稳定终止螺旋进而稳定天然状态有显著贡献。这些结果表明螺旋封端在蛋白质折叠中发挥进一步作用,提供了一个将α-螺旋形成与蛋白质不断发展的三级结构相连接的敏感连接体。