Wan Yejian, Zhao Jingwen, Deng Xiaochun, Chen Jie, Xi Fengna, Wang Xiaobo
Guangxi Medical University Cancer Hospital, Guangxi Medical University, Nanning, China.
Department of Chemistry, Zhejiang Sci-Tech University, Hangzhou, China.
Front Chem. 2021 Nov 17;9:774486. doi: 10.3389/fchem.2021.774486. eCollection 2021.
Compared with natural enzymes, nanozymes based on carbonaceous nanomaterials are advantages due to high stability, good biocompatibility, and the possibility of multifunctionalities through materials engineering at an atomic level. Herein, we present a sensing platform using a nitrogen-doped graphene quantum dot (NGQD) as a highly efficient fluorescent peroxidase mimic, which enables a colorimetric/fluorescent dual-modality platform for detection of hydrogen peroxide (HO) and biomolecules (ascorbic acid-AA, acid phosphatase-ACP) with high sensitivity. NGQD is synthesized using a simple hydrothermal process, which has advantages of high production yield and potential for large-scale preparation. NGQD with uniform size (3.0 ± 0.6 nm) and a single-layer graphene structure exhibits bright and stable fluorescence. N-doping and ultrasmall size endow NGQD with high peroxidase-mimicking activity with an obviously reduced Michaelis-Menten constant ( ) in comparison with natural horseradish peroxidase. Taking advantages of both high nanozyme activity and unique fluorescence property of NGQD, a colorimetric and fluorescent dual-modality platform capable of detecting HO and biomolecules (AA, ACP) with high sensitivity is developed as the proof-of-concept demonstration. Furthermore, the mechanisms underlying the nanozyme activity and biosensing are investigated.
与天然酶相比,基于碳质纳米材料的纳米酶具有诸多优势,如稳定性高、生物相容性好,且通过原子水平的材料工程有可能实现多功能化。在此,我们展示了一种传感平台,该平台使用氮掺杂石墨烯量子点(NGQD)作为高效的荧光过氧化物酶模拟物,从而构建了一个用于高灵敏度检测过氧化氢(HO)和生物分子(抗坏血酸 - AA、酸性磷酸酶 - ACP)的比色/荧光双模态平台。NGQD 通过简单的水热法合成,具有产量高和大规模制备潜力的优点。尺寸均匀(3.0 ± 0.6 nm)且具有单层石墨烯结构的 NGQD 表现出明亮且稳定的荧光。与天然辣根过氧化物酶相比,氮掺杂和超小尺寸赋予 NGQD 高过氧化物酶模拟活性,其米氏常数( )明显降低。利用 NGQD 的高纳米酶活性和独特荧光特性的优势,开发了一种能够高灵敏度检测 HO 和生物分子(AA、ACP)的比色和荧光双模态平台作为概念验证演示。此外,还研究了纳米酶活性和生物传感的潜在机制。