Fang Hufeng, Yu Huan, Lu Qi, Fang Xun, Zhang Qunlin, Zhang Junting, Zhu Lili, Ma Quanbao
School of Pharmacy, Anhui Medical University, Hefei 230032, China.
Anal Chem. 2020 Oct 6;92(19):12825-12832. doi: 10.1021/acs.analchem.0c01147. Epub 2020 Sep 25.
The specific monitoring of physiological highly reactive oxygen species (hROS) using fluorescent gold nanoclusters (AuNCs) remains a challenge for scientists. Herein, SLB-AuNC was first synthesized via an ecofriendly one-pot method using starch as a template, l-3,4-dihydroxyphenylalanine (l-DOPA) as a reducing and a capping agent, and boric acid as a protecting agent for the catechol moiety of l-DOPA. The ingenious introduction of starch and boric acid enhanced the dispersibility, quantum yield, and photostability of fluorescent SLB-AuNCs. The obtained SLB-AuNCs possessed good monodispersity with an average diameter of 2.9 ± 0.8 nm and exhibited highly stable fluorescence with maximum emission at 480 nm under physiological conditions. A ratiometric fluorescent probe for hROS was developed through an oxidization-regulated Förster-resonance-energy-transfer process between SLB-AuNCs and 2,3-diaminophenazine (the oxidative product of hROS and -phenylenediamine, with maximum fluorescence emission at 560 nm). With increasing amount of hROS, the outstanding fluorescence variation of the probe (/) enhanced about 300-fold, accompanied with a distinguishable color change from cyan to yellow. The detection limits of OH, ClO, and ONOO were calculated as 0.11, 0.50, and 0.69 μM, respectively. High selectivity was achieved using -phenylenediamine as a specific signal response for hROS to enable no interference reaction of other ROS toward SLB-AuNCs. The practicability of the proposed probe with super biocompatibility was evaluated by measuring exogenous and endogenous hROS levels in HeLa cells through fluorescence imaging. This work provides a novel strategy to design fluorescent AuNC probes for physiological hROS with great potential for the application of bioassay and bioimaging.
利用荧光金纳米团簇(AuNCs)对生理高活性氧物种(hROS)进行特异性监测,对科学家来说仍是一项挑战。在此,首次通过一种环保的一锅法合成了SLB-AuNC,使用淀粉作为模板,L-3,4-二羟基苯丙氨酸(L-DOPA)作为还原剂和封端剂,硼酸作为L-DOPA邻苯二酚部分的保护剂。淀粉和硼酸的巧妙引入增强了荧光SLB-AuNCs的分散性、量子产率和光稳定性。所获得的SLB-AuNCs具有良好的单分散性,平均直径为2.9±0.8nm,在生理条件下表现出高度稳定的荧光,最大发射波长为480nm。通过SLB-AuNCs与2,3-二氨基吩嗪(hROS与对苯二胺的氧化产物,最大荧光发射波长为560nm)之间的氧化调节荧光共振能量转移过程,开发了一种用于hROS的比率荧光探针。随着hROS含量的增加,该探针出色的荧光变化(/)增强了约300倍,同时伴随着从青色到黄色的明显颜色变化。计算得出OH、ClO和ONOO的检测限分别为0.11、0.50和0.69μM。使用对苯二胺作为hROS的特异性信号响应,实现了高选择性,使得其他ROS对SLB-AuNCs无干扰反应。通过荧光成像测量HeLa细胞中外源性和内源性hROS水平,评估了所提出的具有超生物相容性的探针的实用性。这项工作为设计用于生理hROS的荧光AuNC探针提供了一种新策略,在生物测定和生物成像应用方面具有巨大潜力。