Nominé Yves, Botuyan Maria Victoria, Bajzer Zeljko, Owen Whyte G, Caride Ariel J, Wasielewski Emeric, Mer Georges
Department of Biochemistry and Molecular Biology, Mayo Clinic College of Medicine, 200 First Street Southwest, Rochester, Minnesota 55905, USA.
Biochemistry. 2008 Sep 16;47(37):9866-79. doi: 10.1021/bi702247d. Epub 2008 Aug 22.
Tandem breast cancer C-terminal (BRCT) domains, present in many DNA repair and cell cycle checkpoint signaling proteins, are phosphoprotein binding modules. The best-characterized tandem BRCT domains to date are from the protein BRCA1 (BRCA1-BRCT), an E3 ubiquitin ligase that has been linked to breast and ovarian cancer. While X-ray crystallography and NMR spectroscopy studies have uncovered the structural determinants of specificity of BRCA1-BRCT for phosphorylated peptides, a detailed kinetic and thermodynamic characterization of the interaction is also required to understand how structure and dynamics are connected and therefore better probe the mechanism of phosphopeptide recognition by BRCT domains. Through a global analysis of binding kinetics data obtained from surface plasmon resonance (SPR) and stopped-flow fluorescence spectroscopy, we show that the recognition mechanism is complex and best modeled by two equilibrium conformations of BRCA1-BRCT in the free state that both interact with a phosphopeptide, with dissociation constants ( K d) in the micromolar range. We show that the apparent global dissociation constant derived from this kinetic analysis is similar to the K d values measured using steady-state SPR, isothermal titration calorimetry, and fluorescence anisotropy. The dynamic nature of BRCA1-BRCT may facilitate the binding of BRCA1 to different phosphorylated protein targets.
串联乳腺癌C端(BRCT)结构域存在于许多DNA修复和细胞周期检查点信号蛋白中,是磷蛋白结合模块。迄今为止,特征最明确的串联BRCT结构域来自蛋白质BRCA1(BRCA1 - BRCT),它是一种与乳腺癌和卵巢癌相关的E3泛素连接酶。虽然X射线晶体学和核磁共振光谱研究已经揭示了BRCA1 - BRCT对磷酸化肽特异性的结构决定因素,但还需要对这种相互作用进行详细的动力学和热力学表征,以了解结构和动力学是如何联系的,从而更好地探究BRCT结构域识别磷酸肽的机制。通过对表面等离子体共振(SPR)和停流荧光光谱获得的结合动力学数据进行全局分析,我们表明识别机制很复杂,最好用自由状态下BRCA1 - BRCT的两种平衡构象来建模,这两种构象都与磷酸肽相互作用,解离常数(Kd)在微摩尔范围内。我们表明,从这种动力学分析得出的表观全局解离常数与使用稳态SPR、等温滴定量热法和荧光各向异性测量的Kd值相似。BRCA1 - BRCT的动态性质可能有助于BRCA1与不同的磷酸化蛋白靶点结合。