de Mol Nico J, Dekker Frank J, Broutin Isabel, Fischer Marcel J E, Liskamp Rob M J
Department of Medicinal Chemistry, Utrecht Institute for Pharmaceutical Sciences, Utrecht University, Sorbonnelaan 16, 3584 CA Utrecht, The Netherlands.
J Med Chem. 2005 Feb 10;48(3):753-63. doi: 10.1021/jm049359e.
Thermodynamic and kinetic studies of biomolecular interactions give insight into specificity of molecular recognition processes and advance rational drug design. Binding of phosphotyrosine (pY)-containing peptides to Src- and Grb2-SH2 domains was investigated using a surface plasmon resonance (SPR)-based method. This SPR assay yielded thermodynamic binding constants in solution, and the kinetic information contained in the SPR signal allowed kinetic analysis, which demonstrated distinct ways for pY ligands to interact with the SH2 domains. The results for binding to Src SH2 were consistent with sequestration of water molecules in the interface of the pYEEI peptide/Src SH2 complex. The results for a pYVNV peptide binding to Grb2 SH2 suggested a conformational change for Grb2 SH2 upon binding, which is not observed for Src SH2. Binding of a cyclic construct, allowing the pYVNV sequence in the bound conformation, did not have the expected entropy advantage. The results suggest an alternative binding mode for this construct, with the hydrophobic ring-closing part interacting with the protein. In all cases, except for full-length Grb2 protein, the affinity for the immobilized peptide at the SPR sensor and in solution was identical. This study demonstrates that SPR thermodynamic and kinetic analysis is a useful strategic tool in drug design.
生物分子相互作用的热力学和动力学研究有助于深入了解分子识别过程的特异性,并推动合理的药物设计。使用基于表面等离子体共振(SPR)的方法研究了含磷酸酪氨酸(pY)的肽与Src和Grb2-SH2结构域的结合。这种SPR分析产生了溶液中的热力学结合常数,并且SPR信号中包含的动力学信息允许进行动力学分析,这表明pY配体与SH2结构域相互作用的不同方式。与Src SH2结合的结果与pYEEI肽/Src SH2复合物界面中水分子的隔离一致。pYVNV肽与Grb2 SH2结合的结果表明,Grb2 SH2在结合时发生了构象变化,而Src SH2未观察到这种变化。允许pYVNV序列处于结合构象的环状构建体的结合没有预期的熵优势。结果表明该构建体存在另一种结合模式,其中疏水的环闭合部分与蛋白质相互作用。在所有情况下,除了全长Grb2蛋白外,SPR传感器上固定化肽与溶液中肽的亲和力是相同的。这项研究表明,SPR热力学和动力学分析是药物设计中一种有用的策略工具。