Valanne A, Malmi P, Appelblom H, Niemelä P, Soukka T
Department of Biotechnology, University of Turku, 20520 Turku, Finland.
Anal Biochem. 2008 Apr 1;375(1):71-81. doi: 10.1016/j.ab.2007.12.032. Epub 2007 Dec 31.
The control of cell death is an intricate process involving a multitude of intracellular modulators. Among these molecules, the caspases have a central role and have become an interesting group of enzymes in the current pharmaceutical industry. We have developed a novel dual-step fluorescence energy transfer-based separation-free assay method for the primary screening of caspase-3 inhibitors in vitro. This method relies on fluorescent europium(III)-chelate-doped nanoparticle donors coated with streptavidin in conjunction with a dual-labeled (N-terminal Alexa Fluor 680 fluorescent acceptor and C-terminal BlackBerry Quencher 650) caspase-3-specific peptide substrate modified with a biotinyl moiety. In the assay, the nanoparticle donor excites the fluorescent acceptor, whose emission is monitored with time-resolved measurements. The intensity of the acceptor reflects the activity of the enzyme because the intensity is controlled by the proximity of the quencher. Owing to the dual-step fluorescence resonance energy transfer, this method enables a sensitized fluorescence signal directly proportional to the extent of enzymatic activity with relatively background fluorescence-free measurements in the event of complete enzyme inhibition. The generic nanoparticle donors further promote versatility and cost-efficiency of the method. The performance evaluated as the inhibitor (Z-DEVD-FMK) dose-response curve (IC(50) value of approximately 12 nM) was in good agreement with that of the recent methods found in literature. This assay serves as a model application proving the feasibility of the europium-chelate-doped nanoparticle labels in a homogeneous assay for proteolytic activity.
细胞死亡的控制是一个复杂的过程,涉及众多细胞内调节剂。在这些分子中,半胱天冬酶起着核心作用,并已成为当前制药行业中一组引人关注的酶。我们开发了一种基于双步荧光能量转移的无分离检测方法,用于体外初步筛选半胱天冬酶 -3 抑制剂。该方法依赖于涂有链霉亲和素的掺铕(III)螯合物的荧光纳米颗粒供体,以及用生物素部分修饰的双标记(N 端 Alexa Fluor 680 荧光受体和 C 端 BlackBerry Quencher 650)半胱天冬酶 -3 特异性肽底物。在检测中,纳米颗粒供体激发荧光受体,通过时间分辨测量监测其发射。受体的强度反映酶的活性,因为该强度受淬灭剂接近程度的控制。由于双步荧光共振能量转移,在完全酶抑制的情况下,该方法能够产生与酶活性程度成正比的敏化荧光信号,且测量相对无背景荧光。通用的纳米颗粒供体进一步提高了该方法的通用性和成本效益。作为抑制剂(Z-DEVD-FMK)剂量反应曲线评估的性能(IC(50) 值约为 12 nM)与文献中最近发现的方法一致。该检测作为一个模型应用,证明了掺铕螯合物的纳米颗粒标记物在蛋白水解活性均相检测中的可行性。