Shuvaev Sergey, Suturina Elizaveta A, Mason Kevin, Parker David
Department of Chemistry , Durham University , South Road , Durham , DH1 3LE , UK . Email:
School of Chemistry , The University of Southampton , Highfield , Southampton SO17 1BJ , UK.
Chem Sci. 2018 Feb 19;9(11):2996-3003. doi: 10.1039/c8sc00482j. eCollection 2018 Mar 21.
Luminescence spectroscopy has been used to monitor the selective and reversible binding of pH sensitive, macrocyclic lanthanide complexes, , to the serum protein α-AGP, whose concentration can vary significantly in response to inflammatory processes. On binding α-AGP, a very strong induced circularly-polarised europium luminescence signal was observed that was of opposite sign for human and bovine variants of α-AGP - reflecting the differences in the chiral environment of their drug-binding pockets. A mixture of and complexes allowed the ratiometric monitoring of α-AGP levels in serum. Moreover, competitive displacement of from the protein by certain prescription drugs could be monitored, allowing the determination of drug binding constants. Reversible binding of the sulphonamide arm as a function of pH, led to a change of the coordination environment around the lanthanide ion, from twisted square antiprism (TSAP) to a square antiprismatic geometry (SAP), signalled by emission spectral changes and verified by detailed computations and the fitting of NMR pseudocontact shift data in the sulphonamide bound TSAP structure for the Dy and Eu examples. Such analyses allowed a full definition of the magnetic susceptibility tensor for .
发光光谱已被用于监测对pH敏感的大环镧系配合物与血清蛋白α-酸性糖蛋白(α-AGP)的选择性和可逆结合,α-AGP的浓度会因炎症过程而发生显著变化。在与α-AGP结合时,观察到一个非常强的诱导圆偏振铕发光信号,该信号对于α-AGP的人和牛变体具有相反的符号,这反映了它们药物结合口袋手性环境的差异。[具体配合物名称]和[具体配合物名称]的混合物允许对血清中α-AGP水平进行比率监测。此外,可以监测某些处方药对蛋白质上[具体配合物名称]的竞争性置换,从而确定药物结合常数。磺酰胺臂作为pH的函数的可逆结合导致镧系离子周围配位环境从扭曲的四方反棱柱(TSAP)变为四方反棱柱几何结构(SAP),这通过发射光谱变化来表示,并通过详细计算以及在Dy和Eu示例的磺酰胺结合TSAP结构中对NMR伪接触位移数据的拟合得到验证。此类分析允许对[具体配合物名称]的磁化率张量进行完整定义。