Department of Chemistry, University of Toronto, Toronto, Ontario, Canada.
J Am Soc Mass Spectrom. 2012 Nov;23(11):1911-20. doi: 10.1007/s13361-012-0470-3. Epub 2012 Sep 5.
Knowledge of the structure of protein-ligand complexes can aid in understanding their roles within complex biological processes. Here we use electrospray ionization (ESI) coupled to a Fourier transform ion cyclotron resonance mass spectrometer to investigate the noncovalent binding of the macrocycle cucurbit[7]uril (CB7) to bovine insulin. Recent condensed-phase experiments (Chinai et al., J. Am. Chem. Soc. 133:8810-8813, 2011) indicate that CB7 binds selectively to the N-terminal phenylalanine of the insulin B-chain. Competition experiments employing ESI mass spectrometry to assess complex formation between CB7 and wild type insulin B-chain vs. a mutant B-chain, confirm that the N-terminal phenylalanine plays in important role in solution-phase binding. However, analysis of fragment ions produced by electron capture dissociation (ECD) of CB7 complexed to intact insulin and to the insulin B-chain suggests a different picture. The apparent gas-phase binding site, as identified by the ECD, lies further along the insulin B-chain. Together, these studies thus indicate that the CB7 ligand migrates in the ESI mass spectrometry analysis. Migration is likely aided by the presence of additional interactions between CB7 and the insulin B-chain, which are not observed in the crystal structure. While this conformational difference may result simply from the removal of solvent and addition of excess protons by the ESI, we propose that the migration may be enhanced by charge reduction during the ECD process itself because ion-dipole interactions are key to CB7 binding. The results of this study caution against using ECD-MS as a stand-alone structural probe for the determination of solution-phase binding sites.
蛋白质-配体复合物的结构知识有助于理解它们在复杂生物过程中的作用。在这里,我们使用电喷雾电离(ESI)与傅里叶变换离子回旋共振质谱仪联用,研究大环瓜环[7]脲(CB7)与牛胰岛素的非共价结合。最近的凝聚相实验(Chinai 等人,J. Am. Chem. Soc. 133:8810-8813, 2011)表明,CB7 选择性地结合胰岛素 B 链的 N 端苯丙氨酸。使用 ESI 质谱进行的竞争实验来评估 CB7 与野生型胰岛素 B 链与突变体 B 链之间的复合物形成,证实 N 端苯丙氨酸在溶液结合中起重要作用。然而,对电子俘获解离(ECD)产生的碎片离子的分析表明,与完整胰岛素和胰岛素 B 链结合的 CB7 复合物表明情况有所不同。通过 ECD 鉴定的气相结合位点进一步沿着胰岛素 B 链延伸。这些研究表明,CB7 配体在 ESI 质谱分析中迁移。迁移可能是由于 CB7 与胰岛素 B 链之间存在额外的相互作用,而这些相互作用在晶体结构中观察不到。虽然这种构象差异可能仅仅是由于 ESI 去除溶剂和添加过量质子的结果,但我们提出,迁移可能会由于 ECD 过程本身中的电荷减少而增强,因为离子-偶极相互作用是 CB7 结合的关键。这项研究的结果告诫不要将 ECD-MS 用作确定溶液结合位点的独立结构探针。