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Ratiometric Fluorescence Probe for Monitoring Hydroxyl Radical in Live Cells Based on Gold Nanoclusters

机译:基于金纳米簇的比例荧光探针监测活细胞中的羟自由基

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Determination of hydroxyl radical (~·OH) with high sensitivity and accuracy in live cells is a challenge for evaluating the role that ~·OH plays in the physiological and pathological processes. In this work, a ratiometric fluorescence biosensor for ~·OH was developed, in which gold nanocluster (AuNC) protected by bovine serum albumin was employed as a reference fluorophore and the organic molecule 2-[6-(4'-hydroxy)phenoxy-3H-xanthen-3-on-9-yl]benzoic acid (HPF) acted as both the response signal and specific recognition element for ~·OH. In the absence of ~·OH, only one emission peak at 637 nm ascribed to AuNCs was observed, because HPF was almost nonfluorescent. However, fluorescence emission at 515 nm attributed to the HPF product after reaction with ~·OH--dianionic fluorescein--gradually increased with the continuous addition of ~·OH, while the emission at 637 nm stays constant, resulting in a ratiometric determination of ~·OH. The developed fluorescent sensor exhibited high selectivity for ~·OH over other reactive oxygen species (ROS), reactive nitrogen species (RNS), metal ions, and other biological species, as well as high accuracy and sensitivity with low detection limit to ~0.68 μM, which fulfills the requirements for detection of ~·OH in a biological system. In addition, the AuNC-based inorganic-organic probe showed long-term stability against light illumination and pH, good cell permeability, and low cytotoxicity. As a result, the present ratiometric sensor was successfully used for bioimaging and monitoring of ~·OH changes in live cells upon oxidative stress.
机译:在活细胞中以高灵敏度和准确度确定羟基自由基(〜·OH)是评估〜·OH在生理和病理过程中的作用的挑战。在这项工作中,开发了一种用于〜·OH的比例荧光生物传感器,其中以牛血清白蛋白保护的金纳米簇(AuNC)为参考荧光团,有机分子2- [6-(4'-羟基)苯氧基- 3H-黄嘌呤-3-9-9-基]苯甲酸(HPF)充当〜·OH的响应信号和特异性识别元件。在不存在〜·OH的情况下,仅观察到归因于AuNCs的一个在637 nm处的发射峰,因为HPF几乎是无荧光的。但是,与〜·OH--双阴离子荧光素反应后,归因于HPF产物的515 nm处的荧光发射随着〜·OH的不断添加而逐渐增加,而637 nm处的发射保持恒定,从而可以定量测定〜·OH。研发的荧光传感器对〜·OH的选择性优于其他活性氧(ROS),活性氮(RNS),金属离子和其他生物种类,并且具有较高的准确性和灵敏度,且检测限低至〜0.68μM ,满足了在生物系统中检测〜·OH的要求。此外,基于AuNC的无机有机探针显示出对光照和pH的长期稳定性,良好的细胞通透性和低细胞毒性。结果,本比例传感器被成功地用于生物成像和监测氧化应激后活细胞中〜·OH的变化。

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