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利用槲皮素模板制备荧光支架用于选择性检测 Hg 的研究:实验与理论研究及活细胞成像。

Development of a fluorescent scaffold by utilizing quercetin template for selective detection of Hg: Experimental and theoretical studies along with live cell imaging.

机构信息

Department of Chemistry, CHRIST (Deemed to be University), Hosur Road, Bangalore, Karnataka, 560029 India.

Sagardighi Kamada Kinkar Smriti Mahavidyalaya Sagardighi, Murshidabad 742226, West Bengal, India.

出版信息

Spectrochim Acta A Mol Biomol Spectrosc. 2024 Jul 5;315:124249. doi: 10.1016/j.saa.2024.124249. Epub 2024 Apr 5.

Abstract

Quercetin is an important antioxidant with high bioactivity and it has been used as SARS-CoV-2 inhibitor significantly. Quercetin, one of the most abundant flavonoids in nature, has been in the spot of numerous experimental and theoretical studies in the past decade due to its great biological and medicinal importance. But there have been limited instances of employing quercetin and its derivatives as a fluorescent framework for specific detection of various cations and anions in the chemosensing field. Therefore, we have developed a novel chemosensor based on quercetin coupled benzyl ethers (QBE) for selective detection of Hg with "naked-eye" colorimetric and "turn-on" fluorometric response. Initially QBE itself exhibited very weak fluorescence with low quantum yield (Φ = 0.009) due to operating photoinduced electron transfer (PET) and inhibition of excited state intramolecular proton transfer (ESIPT) as well as intramolecular charge transfer (ICT) within the molecule. But in presence of Hg, QBE showed a sharp increase in fluorescence intensity by 18-fold at wavelength 444 nm with high quantum yield (Φ = 0.159) for the chelation-enhanced fluorescence (CHEF) with coordination of Hg, which hampers PET within the molecule. The strong binding affinity of QBE towards Hg has been proved by lower detection limit at 8.47 µM and high binding constant value as 2 × 10 M. The binding mechanism has been verified by DFT study, Cyclic voltammograms and Jobs plot analysis. For the practical application, the binding selectivity of QBE with Hg has been capitalized in physiological medium to detect intracellular Hg levels in living plant tissue by using green gram seeds. Thus, employing QBE as a fluorescent chemosensor for the specific identification of Hg will pave the way for a novel approach to simplifying the creation of various chemosensors based on quercetin backbone for the precise detection of various biologically significant analytes.

摘要

槲皮素是一种重要的抗氧化剂,具有很高的生物活性,它已被广泛用于抑制 SARS-CoV-2。槲皮素是自然界中最丰富的类黄酮之一,由于其重要的生物学和医学意义,在过去十年中,它一直是众多实验和理论研究的焦点。但是,将槲皮素及其衍生物作为荧光骨架用于特定检测化学传感领域中的各种阳离子和阴离子的实例非常有限。因此,我们开发了一种基于槲皮素偶联苄醚 (QBE) 的新型化学传感器,用于选择性检测 Hg,具有“肉眼可见”的比色和“开启”荧光响应。最初,由于分子内光诱导电子转移 (PET)、激发态分子内质子转移 (ESIPT) 和分子内电荷转移 (ICT) 的抑制作用,QBE 本身的荧光非常微弱,量子产率 (Φ = 0.009) 很低。但是,在存在 Hg 的情况下,QBE 表现出荧光强度急剧增加 18 倍,在 444nm 处的荧光量子产率 (Φ = 0.159) 很高,这是由于 Hg 配位导致的螯合增强荧光 (CHEF),从而抑制了分子内的 PET。QBE 对 Hg 的强结合亲和力已通过检测限低至 8.47µM 和高结合常数值 2×10M 得到证明。通过 DFT 研究、循环伏安法和 Jobs 图分析验证了结合机理。对于实际应用,利用绿豆种子在生理介质中利用 QBE 与 Hg 的结合选择性来检测活植物组织中的细胞内 Hg 水平,从而利用 QBE 作为荧光化学传感器对 Hg 进行特异性识别。这将为基于槲皮素骨架简化各种化学传感器的创建铺平道路,以便对各种具有生物学意义的分析物进行精确检测。

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