Laboratory of Functionalized Molecular Solids, Ministry of Education, Anhui Key Laboratory of Chemo/Biosensing, College of Chemistry and Materials Science, Anhui Normal University, Wuhu 241002, P. R. China.
Analyst. 2021 Apr 26;146(8):2609-2616. doi: 10.1039/d1an00142f.
A Metal-Organic Framework (MOFs) with large surface area, exposed active site, excellent catalytic performance and high chemical stability has been used as an artificial enzyme and designed for nonenzymatic electrochemical sensors. Here, a strategy of using an enhanced electrochemical sensing platform for the detection of nitic oxide (NO) and hydrogen peroxide (H2O2) was designed via a nano-metalloporphyrinic metal-organic framework (NporMOF(Fe)) as an electrode material. By taking advantage of the small size, high surface area and exposed Fe active site, the obtained NporMOF(Fe) displays excellent electrocatalytic activity toward NO and H2O2. The NporMOF(Fe) modified electrode shows high sensing ability toward the in situ generated NO in NO2- containing phosphate buffer (PB) solution with a wide linear detection range of 5 μM to 200 μM and a very low detection limit of 1.3 μM. Moreover, NporMOF(Fe) exhibits high electrocatalytic activity toward the reduction of H2O2 and the practical detection of H2O2 released from HeLa cells. Furthermore, the NporMOF(Fe) modified electrode shows excellent selectivity toward the detection of NO and H2O2 in the presence of other physiologically important analytes. This method shows excellent biosensing performance, implying the universal applicability of MOFs-based artificial nanozymes for biosensors and the potential application for third generation biosensors.
具有大表面积、暴露的活性位点、优异的催化性能和高化学稳定性的金属-有机骨架(MOFs)已被用作人工酶,并被设计用于非酶电化学传感器。在这里,通过使用纳米金属卟啉金属-有机骨架(NporMOF(Fe))作为电极材料,设计了一种用于检测一氧化氮(NO)和过氧化氢(H2O2)的增强型电化学传感平台策略。利用其小尺寸、大表面积和暴露的 Fe 活性位点,所获得的 NporMOF(Fe) 对 NO 和 H2O2 表现出优异的电催化活性。NporMOF(Fe) 修饰电极对含有 NO2-的磷酸盐缓冲液(PB)溶液中原位生成的 NO 具有高的传感能力,线性检测范围为 5 μM 至 200 μM,检测限低至 1.3 μM。此外,NporMOF(Fe) 对 H2O2 的还原具有高电催化活性,并且可以实际检测 HeLa 细胞中释放的 H2O2。此外,NporMOF(Fe) 修饰电极对在存在其他生理上重要的分析物的情况下检测 NO 和 H2O2 具有出色的选择性。该方法表现出优异的生物传感性能,表明基于 MOFs 的人工纳米酶在生物传感器中的普遍适用性以及在第三代生物传感器中的潜在应用。