Yan Zhe, Tripet Brian, Hodges Robert S
Department of Biochemistry and Molecular Genetics, University of Colorado at Denver and Health Sciences Center, Aurora, CO 80045, USA.
J Struct Biol. 2006 Aug;155(2):162-75. doi: 10.1016/j.jsb.2006.03.024. Epub 2006 Apr 27.
The Spike (S) protein of SARS-coronavirus (SARS-CoV) mediates viral entry into host cells. It contains two heptad repeat regions, denoted HRN and HRC. We have identified the location of the two interacting HR regions that form the six-helix bundle (B. Tripet, et al, J. Biol. Chem., 279: 20836-20849, 2004). In this study, HRC peptide (1150-1185) was chosen as the region to make structure-based substitutions to design a series of HRC analogs with increased hydrophobicity, helical propensity and electrostatic interactions, or with a covalent constraint (lactam bridge) to stabilize the alpha-helical conformation. Effects of the substitutions on alpha-helical structure of HRC peptides and their abilities to interact with HRN or HRC have been examined by biophysical techniques. Our results show that the binding of the HRC analogs to HRN does not correlate with the coiled-coil stability of the HRC analogs, but their interactions with HRC does correlate with their stability, except for HRC7. This study also suggested three types of potential peptide inhibitors against viral entry can be designed, those that simultaneously inhibit interaction with HRC and HRN and those that are either HRC-specific or HRN-specific. For example, our study shows the important role of alpha-helical structure in the formation of the six-helix bundle where the lactam bridge constrained analog (HRC5) provided the best interaction with HRN. The importance of alpha-helical structure in the interaction with native HRC was demonstrated with analog HRC4 which binds best to HRC.
严重急性呼吸综合征冠状病毒(SARS-CoV)的刺突(S)蛋白介导病毒进入宿主细胞。它包含两个七肽重复区域,分别称为HRN和HRC。我们已经确定了形成六螺旋束的两个相互作用的HR区域的位置(B. Tripet等人,《生物化学杂志》,279:20836 - 20849,2004年)。在本研究中,选择HRC肽(1150 - 1185)作为进行基于结构的替换的区域,以设计一系列具有增加的疏水性、螺旋倾向和静电相互作用,或具有共价约束(内酰胺桥)以稳定α-螺旋构象的HRC类似物。通过生物物理技术研究了这些替换对HRC肽α-螺旋结构及其与HRN或HRC相互作用能力的影响。我们的结果表明,HRC类似物与HRN的结合与HRC类似物的卷曲螺旋稳定性无关,但它们与HRC的相互作用与其稳定性相关,HRC7除外。本研究还表明,可以设计三种类型的潜在抗病毒进入肽抑制剂,即同时抑制与HRC和HRN相互作用的抑制剂,以及HRC特异性或HRN特异性的抑制剂。例如,我们的研究表明α-螺旋结构在六螺旋束形成中的重要作用,其中内酰胺桥约束类似物(HRC5)与HRN的相互作用最佳。用与HRC结合最佳的类似物HRC4证明了α-螺旋结构在与天然HRC相互作用中的重要性。