Single Iron Site Nanozyme for Ultrasensitive Glucose Detection.
Min ChenHuang ZhouXiaokang LiuTongwei YuanWenyu WangChao ZhaoYafei ZhaoFangyao ZhouXin WangZhenggang XueTao YaoCan XiongYuen WuPublished in: Small (Weinheim an der Bergstrasse, Germany) (2020)
Nanomaterials with enzyme-mimicking characteristics have engaged great awareness in various fields owing to their comparative low cost, high stability, and large-scale preparation. However, the wide application of nanozymes is seriously restricted by the relatively low catalytic activity and poor specificity, primarily because of the inhomogeneous catalytic sites and unclear catalytic mechanisms. Herein, a support-sacrificed strategy is demonstrated to prepare a single iron site nanozyme (Fe SSN) dispersed on the porous N-doped carbon. With well-defined coordination structure and high density of active sites, the Fe SSN performs prominent peroxidase-like activity by efficiently activating H2 O2 into hydroxyl radical (•OH) species. Furthermore, the Fe SSN is applied in colorimetric detection of glucose through a multienzyme biocatalytic cascade platform. Moreover, a low-cost integrated agarose-based hydrogel colorimetric biosensor is designed and successfully achieves the visualization evaluation and quantitative detection of glucose. This work expands the application of single-site catalysts in the fields of nanozyme-based biosensors and personal biomedical diagnosis.
Keyphrases
- low cost
- label free
- gold nanoparticles
- metal organic framework
- high density
- loop mediated isothermal amplification
- sensitive detection
- quantum dots
- hydrogen peroxide
- aqueous solution
- blood glucose
- highly efficient
- real time pcr
- drug delivery
- fluorescent probe
- blood pressure
- high throughput
- molecularly imprinted
- single molecule
- tandem mass spectrometry