Arachea Buenafe T, Wiener Michael C
Department of Molecular Physiology and Biological Physics, University of Virginia, Charlottesville, VA 22908, USA.
Department of Molecular Physiology and Biological Physics, University of Virginia, Charlottesville, VA 22908, USA.
Anal Biochem. 2017 Apr 1;522:30-36. doi: 10.1016/j.ab.2017.01.020. Epub 2017 Jan 22.
The Intramolecular Quenched Fluorescence (IQF) protease assay utilizes peptide substrates containing donor-quencher pairs that flank the scissile bond. Following protease cleavage, the dequenched donor emission of the product is subsequently measured. Inspection of the IQF literature indicates that rigorous treatment of systematic errors in observed fluorescence arising from inner-filter absorbance (IF) and non-specific intermolecular quenching (NSQ) is incompletely performed. As substrate and product concentrations vary during the time-course of enzyme activity, iterative solution of the kinetic rate equations is, generally, required to obtain the proper time-dependent correction to the initial velocity fluorescence data. Here, we demonstrate that, if the IQF assay is performed under conditions where IF and NSQ are approximately constant during the measurement of initial velocity for a given initial substrate concentration, then a simple correction as a function of initial substrate concentration can be derived and utilized to obtain accurate initial velocity data for analysis.
分子内淬灭荧光(IQF)蛋白酶测定法利用含有位于可裂解键两侧的供体-猝灭剂对的肽底物。蛋白酶切割后,随后测量产物去猝灭的供体发射。对IQF文献的研究表明,对由内滤光片吸光度(IF)和非特异性分子间猝灭(NSQ)引起的观察到的荧光中的系统误差进行严格处理并不完全。由于底物和产物浓度在酶活性的时间进程中会发生变化,通常需要对动力学速率方程进行迭代求解,以获得对初始速度荧光数据的适当时间依赖性校正。在此,我们证明,如果在给定初始底物浓度下测量初始速度期间IF和NSQ近似恒定的条件下进行IQF测定,那么可以推导出并利用作为初始底物浓度函数的简单校正来获得准确的初始速度数据用于分析。