School of Chemistry and Chemical Engineering, Yangzhou University, YangzhouJiangsu, 225002, China.
Anal Bioanal Chem. 2024 Sep;416(21):4691-4703. doi: 10.1007/s00216-024-05236-6. Epub 2024 Mar 21.
Electrochemiluminescence resonance energy transfer (ECL-RET) is a versatile signal transduction strategy widely used in the fabrication of chem/biosensors. However, this technique has not yet been applied in visualized imaging analysis of intracellular species due to the insulating nature of the cell membrane. Here, we construct a ratiometric ECL-RET analytical method for hypochlorite ions (ClO) by ECL luminophore, with a luminol derivative (L-012) as the donor and a fluorescence probe (fluorescein hydrazide) as the acceptor. L-012 can emit a strong blue ECL signal and fluorescein hydrazide has negligible absorbance and fluorescence signal in the absence of ClO. Thus, the ECL-RET process is turned off at this time. In the presence of ClO, however, the closed-loop hydrazide structure in fluorescein hydrazide is opened via specific recognition with ClO, accompanied with intensified absorbance and fluorescence signal. Thanks to the spectral overlap between the ECL spectrum of L-012 and the absorption spectrum of fluorescein, the ECL-RET effect is gradually recovered with the addition of ClO. Furthermore, the ECL-RET system has been successfully applied to image intracellular ClO. Although the insulating nature of the cell itself can generate a shadow ECL pattern in the cellular region, extracellular ECL emission penetrates the cell membrane and excites intracellular fluorescein generated by the reactions between fluorescein hydrazide and ClO. The cell imaging strategy via ECL-RET circumvents the blocking of the cell membrane and enables assays of intracellular species. The importance of the ECL-RET platform lies in calibrating the fluctuation from the external environment and improving the selectivity by using fluorescent probes. Therefore, this ratiometric ECL sensor has shown broad application prospects in the identification of targets in clinical diagnosis and environmental monitoring.
电化学发光共振能量转移(ECL-RET)是一种广泛应用于化学/生物传感器制造的多功能信号转导策略。然而,由于细胞膜的绝缘性质,该技术尚未应用于细胞内物质的可视化成像分析。在这里,我们构建了一种比率型电化学发光共振能量转移(ECL-RET)分析方法,用于检测次氯酸根离子(ClO),其发光体为发光体衍生物(L-012)作为供体,荧光探针(荧光素酰肼)作为受体。L-012 可以发出强蓝色 ECL 信号,而在没有 ClO 的情况下,荧光素酰肼几乎没有吸收和荧光信号。因此,此时 ECL-RET 过程关闭。然而,当存在 ClO 时,通过 ClO 的特异性识别,荧光素酰肼中环己酰肼结构被打开,伴随着吸收和荧光信号的增强。由于 L-012 的 ECL 光谱和荧光的吸收光谱之间存在光谱重叠,随着 ClO 的加入,ECL-RET 效应逐渐恢复。此外,ECL-RET 系统已成功应用于细胞内 ClO 的成像。尽管细胞膜本身的绝缘性质会在细胞区域产生阴影 ECL 图案,但细胞外的 ECL 发射可以穿透细胞膜,并激发由荧光素酰肼与 ClO 之间的反应产生的细胞内荧光素。通过 ECL-RET 的细胞成像策略规避了细胞膜的阻断,使细胞内物质的测定成为可能。ECL-RET 平台的重要性在于通过使用荧光探针来校准外部环境的波动并提高选择性。因此,这种比率型 ECL 传感器在临床诊断和环境监测中的目标识别方面具有广阔的应用前景。