Wang Caixia, Li Mengsi, Wang Peijin, Liu Defang
College of Chemistry and Chemical Engineering, Southwest University, Chongqing, 400715, China.
Key Laboratory of Biorheological Science and Technology, Ministry of Education, College of Bioengineering, Chongqing University, No.174, Shapingba Main Street, Chongqing, 400030, China.
Mikrochim Acta. 2020 Jun 29;187(7):409. doi: 10.1007/s00604-020-04385-6.
An electrochemiluminescence (ECL) analytical platform is constructed based on boron nitride quantum dots (BNQDs) as a novel coreactant of luminol for quantitative assay of concanavalin A (Con A). Different from previous research that mainly focuses on its superior optical properties, BNQDs are used for the first time as a coreactant for boosting ECL intensity of luminol, which has a 10-fold enhancement compared with individual poly(luminol/aniline) nanorods loaded on reduced graphene oxide (PLA-rGO) using GCE. On the basis that BNQDs contain an abundance of active amino, a possible mechanism of amino oxidation facilitating ECL emission is proposed. Firstly, luminol as light spices are oxidized to luminol and BNQDs generate an abundance of BNQDs-NH via electrochemical oxidization, producing reductive intermediates BNQDs-N in alkaline conditions. Finally, BNQDs-N react with luminol to obtain the excited species AP, returning to ground state and emitting light. Due to the hindrance effect of Con A, the ECL intensity decreases gradually as various concentrations of Con A are modifying the electrode surface. Therefore, a sensitive ECL biosensor for detecting Con A is constructed exhibiting a wide linear range of 1.0 pg·mL to 1.0 μg·mL and a low detection limit of 0.15 pg·mL. Graphical abstract Schematic representation of an electrochemiluminescence (ECL) biosensor based on boron nitride quantum dots (BNQDs) as an efficient coreactant of reduced graphene oxide functionalized poly(luminol/aniline) (PLA-rGO) for quantitative assay of concanavalin A (Con A).
构建了一种基于氮化硼量子点(BNQDs)的电化学发光(ECL)分析平台,将其作为鲁米诺的新型共反应剂用于刀豆蛋白A(Con A)的定量测定。与以往主要关注其优异光学性质的研究不同,BNQDs首次被用作增强鲁米诺ECL强度的共反应剂,与使用玻碳电极(GCE)负载在还原氧化石墨烯(rGO)上的单个聚(鲁米诺/苯胺)纳米棒相比,其ECL强度增强了10倍。基于BNQDs含有大量活性氨基,提出了一种氨基氧化促进ECL发射的可能机制。首先,作为发光剂的鲁米诺被氧化为鲁米诺,BNQDs通过电化学氧化产生大量的BNQDs-NH,在碱性条件下生成还原中间体BNQDs-N。最后,BNQDs-N与鲁米诺反应得到激发态物种AP,返回基态并发光。由于Con A的阻碍作用,随着不同浓度的Con A修饰电极表面,ECL强度逐渐降低。因此,构建了一种用于检测Con A的灵敏ECL生物传感器,其线性范围为1.0 pg·mL至1.0 μg·mL,检测限低至0.15 pg·mL。图形摘要:基于氮化硼量子点(BNQDs)作为还原氧化石墨烯功能化聚(鲁米诺/苯胺)(PLA-rGO)的有效共反应剂用于刀豆蛋白A(Con A)定量测定的电化学发光(ECL)生物传感器的示意图。