School of Materials Science and Engineering , Southwest University of Science and Technology , Mianyang , 621010 , P. R. China.
School of National Defense Science & Technology , Southwest University of Science and Technology , Mianyang , 621010 , P. R. China.
Anal Chem. 2018 Aug 21;90(16):9959-9965. doi: 10.1021/acs.analchem.8b02197. Epub 2018 Aug 3.
In this work, 9-mesityl-10-methylacridinium ion (Acr-Mes) is found to act as an effective photocatalyst mimicking the function of oxidase. Upon visible light illumination, the excited Acr-Mes is able to exhibit superior enzymatic catalytic activity for small molecular substrates as well as protein biomacromolecule (cytochrome c). The experiment results demonstrate that the Acr-Mes oxidase mimic shows higher affinity to 3,3',5,5'-tetramethylbenzidine (TMB) than natural horseradish peroxidase or the reported molecule oxidase mimic. The reaction mechanism is ascribed to the strong oxidation property of the long-lived electron-transfer state (Acr-Mes) and the electron transfer from Acr-Mes radical to dissolved oxygen to generate superoxide radicals, which can easily oxidize various substrates. On the basis of these observations, the light-activatable Acr-Mes with an oxidase-like activity as the probe is utilized for cost-effective, sensitive, and highly selective colorimetric detection of two biothiols (L-cysteine and L-glutathione). The lowest detectable concentrations of L-Cys and L-GSH is 100 nM, which is lower than that of most of the reported methods for biothiols. Beyond this, we construct a series of visual molecular logic gates (AND, INH, and NOR) using the oxidase mimic-involved reaction systems.
在这项工作中,发现 9-均三甲苯基-10-甲基吖啶鎓离子(Acr-Mes)可作为一种有效的模仿氧化酶功能的光催化剂。在可见光照射下,激发态的 Acr-Mes 能够表现出对小分子底物以及蛋白质生物大分子(细胞色素 c)的优异酶催化活性。实验结果表明,Acr-Mes 氧化酶模拟物对 3,3',5,5'-四甲基联苯胺(TMB)的亲和力高于天然辣根过氧化物酶或报道的分子氧化酶模拟物。反应机理归因于长寿命电子转移态(Acr-Mes)的强氧化性质以及 Acr-Mes 自由基向溶解氧的电子转移生成超氧自由基,后者可容易地氧化各种底物。基于这些观察结果,我们使用具有氧化酶样活性的可激活光 Acr-Mes 作为探针,用于成本效益高、灵敏且高度选择性的比色法检测两种生物硫醇(L-半胱氨酸和 L-谷胱甘肽)。L-Cys 和 L-GSH 的最低检测浓度为 100 nM,低于大多数报道的生物硫醇方法。除此之外,我们使用涉及氧化酶模拟物的反应系统构建了一系列可视化分子逻辑门(AND、INH 和 NOR)。