Gao Qi, Chen Cheng-Yu, Zong Chengli, Wang Shuo, Ramiah Annapoorani, Prabhakar Pradeep, Morris Laura C, Boons Geert-Jan, Moremen Kelley W, Prestegard James H
Complex Carbohydrate Research Center, University of Georgia , Athens, Georgia 30602, United States.
ACS Chem Biol. 2016 Nov 18;11(11):3106-3113. doi: 10.1021/acschembio.6b00692. Epub 2016 Sep 29.
Roundabout 1, or Robo1, is a cell surface signaling molecule important in axon guidance. Its interaction with heparan sulfate (HS) and members of the Slit protein family is essential to its activity, making characterization of these interactions by structural methods, such as NMR, highly desirable. However, the fact that Robo1 is a glycosylated protein prevents employment of commonly used bacterial hosts for expression of properly glycosylated forms with the uniform N, C, and H labeling needed for NMR studies. Here, we apply an alternative methodology, based on labeling with a single amino acid type and high structural content NMR data, to characterize a two-domain construct of glycosylated Robo1 (Robo1-Ig1-2) interacting with a synthetic HS tetramer (IdoA-GlcNS6S-IdoA2S-GlcNS6S-(CH)NH). Significant chemical shift perturbations of the crosspeak from K81 on titration with the tetramer provide initial evidence for the location of a binding site and allow determination of a 255 μM disassociation constant. The binding epitopes, bound conformation, and binding site placement of the HS tetramer have been further characterized by saturation transfer difference (STD), transferred nuclear Overhauser effect (trNOE), and paramagnetic perturbation experiments. A model of the complex has been generated using constraints derived from the various NMR experiments. Postprocessing energetic analysis of this model provides a rationale for the role each glycan residue plays in the binding event, and examination of the binding site in the context of a previous Robo-Slit structure provides a rationale for modulation of Robo-Slit interactions by HS.
环连蛋白1(Roundabout 1,简称Robo1)是一种在轴突导向中起重要作用的细胞表面信号分子。它与硫酸乙酰肝素(HS)以及Slit蛋白家族成员的相互作用对其活性至关重要,因此通过核磁共振(NMR)等结构方法来表征这些相互作用非常必要。然而,Robo1是一种糖基化蛋白,这使得无法使用常用的细菌宿主来表达具有NMR研究所需的均匀N、C和H标记的正确糖基化形式。在此,我们应用一种基于单一氨基酸类型标记和高结构含量NMR数据的替代方法,来表征糖基化的Robo1的双结构域构建体(Robo1-Ig1-2)与合成的HS四聚体(艾杜糖醛酸-6-O-硫酸氨基葡萄糖-艾杜糖醛酸-2-O-硫酸-6-O-硫酸氨基葡萄糖-(CH)NH)之间的相互作用。用四聚体滴定后,来自K81的交叉峰出现显著的化学位移扰动,这为结合位点的位置提供了初步证据,并确定了255 μM的解离常数。HS四聚体的结合表位、结合构象和结合位点定位已通过饱和转移差异(STD)、转移核Overhauser效应(trNOE)和顺磁扰动实验进一步表征。利用从各种NMR实验得出的约束条件生成了复合物模型。对该模型进行后处理能量分析,为每个聚糖残基在结合事件中所起的作用提供了理论依据,并且在先前的Robo-Slit结构背景下检查结合位点,为HS对Robo-Slit相互作用的调节提供了理论依据。