Querard Jérôme, Gautier Arnaud, Le Saux Thomas, Jullien Ludovic
Ecole Normale Supérieure-PSL Research University , Département de Chimie , 24, rue Lhomond , F-75005 Paris , France . Email:
Sorbonne Universités , UPMC Univ Paris 06 , PASTEUR , F-75005 , Paris , France.
Chem Sci. 2015 May 1;6(5):2968-2978. doi: 10.1039/c4sc03955f. Epub 2015 Mar 18.
Eliminating the contribution of interfering compounds is a key step in chemical analysis. In complex media, one possible approach is to perform a preliminary separation. However purification is often demanding, long, and costly; it may also considerably alter the properties of interacting components of the mixture ( in a living cell). Hence there is a strong interest for developing separation-free non-invasive analytical protocols. Using photoswitchable probes as labelling and titration contrast agents, we demonstrate that the association of a modulated monochromatic light excitation with a kinetic filtering of the overall observable is much more attractive than constant excitation to read-out the contribution from a target probe under adverse conditions. An extensive theoretical framework enabled us to optimize the out-of-phase concentration first-order response of a photoswitchable probe to modulated illumination by appropriately matching the average light intensity and the radial frequency of the light modulation to the probe dynamics. Thus, we can selectively and quantitatively extract from an overall signal the contribution from a target photoswitchable probe within a mixture of species, photoswitchable or not. This simple titration strategy is more specifically developed in the context of fluorescence imaging, which offers promising perspectives.
消除干扰化合物的影响是化学分析中的关键步骤。在复杂介质中,一种可能的方法是进行初步分离。然而,纯化过程通常要求苛刻、耗时且成本高昂;它还可能显著改变混合物(在活细胞中)相互作用成分的性质。因此,人们对开发无需分离的非侵入性分析方法有着浓厚的兴趣。使用光开关探针作为标记和滴定造影剂,我们证明,在不利条件下,将调制单色光激发与对整体可观测信号的动力学滤波相结合,比恒定激发更具吸引力,以读出目标探针的贡献。一个广泛的理论框架使我们能够通过将平均光强和光调制的径向频率与探针动力学适当匹配,优化光开关探针对外加调制光的异相浓度一阶响应。因此,我们可以从整体信号中选择性地、定量地提取混合物中目标光开关探针的贡献,无论混合物中的物质是否可光开关。这种简单的滴定策略是在荧光成像的背景下更具体地开发的,它提供了有前景的前景。