葡萄糖氧化酶
DNA折纸
荧光
材料科学
生物医学工程
全血
生物物理学
纳米技术
生物传感器
生物
光学
医学
外科
纳米结构
物理
作者
Xianlei Li,Xuehui Xu,KeWei Wang,Yuqiu Chen,Yangyuchen Zhang,Qingrui Si,Zian Pan,Fan Jia,Xinyue Cui,Xuan Wang,Xiongwei Deng,Yi Zhao,Dan Shu,Qiao Jiang,Baoquan Ding,Yan Wu,Ran Liu
标识
DOI:10.1002/adma.202208820
摘要
Abstract Exploration of clinically acceptable blood glucose monitors has been engaging in the past decades, yet the ability to quantitatively detect blood glucose in a painless, accurate, and highly sensitive manner remains limited. Herein, a fluorescence‐amplified origami microneedle (FAOM) device is described that integrates tubular DNA‐origami nanostructures and glucose oxidase molecules into its inner network to quantitatively monitor blood glucose. The skin‐attached FAOM device can collect glucose molecules in situ and transfer the input into a proton signal after the oxidase's catalysis. The proton‐driven mechanical reconfiguration of DNA‐origami tubes separates fluorescent molecules and their quenchers, eventually amplifying the glucose‐correlated fluorescence signal. The function equation established on clinical examinees suggests that FAOM can report blood glucose in a highly sensitive and quantitative manner. In clinical blind tests, the FAOM achieves well‐matched accuracy (98.70 ± 4.77%) compared with a commercial blood biochemical analyzer, fully meeting the requirements of accurate blood glucose monitoring. The FAOM device can be inserted into skin tissue in a trivially painful manner and with minimal leakage of DNA origami, substantially improving the tolerance and compliance of the blood glucose test.
科研通智能强力驱动
Strongly Powered by AbleSci AI