Rational design of a ratiometric fluorescent nanoprobe for real-time imaging of hydroxyl radical and its therapeutic evaluation of diabetes

纳米探针 生物相容性 荧光 活性氧 羟基自由基 化学 体内 合理设计 斑马鱼 氧化应激 分析物 激进的 组合化学 生物物理学 纳米技术 生物化学 材料科学 生物 有机化学 物理 生物技术 量子力学 基因 物理化学
作者
Yiyu Chen,Xueying Ji,Linlin Tao,Chao Ma,Junqi Nie,Cuifen Lu,Guichun Yang,Erfei Wang,Heng Liu,Feiyi Wang,Jun Ren
出处
期刊:Biosensors and Bioelectronics [Elsevier BV]
卷期号:246: 115868-115868 被引量:13
标识
DOI:10.1016/j.bios.2023.115868
摘要

Hydroxyl radical (•OH), one of the most reactive and deleterious substances in organisms, belongs to a class of reactive oxygen species (ROS), and it has been verified to play an essential role in numerous pathophysiological scenarios. However, due to its extremely high reactivity and short lifetime, the development of a reliable and robust method for tracking endogenous •OH remains an ongoing challenge. In this work, we presented the first ratiometric fluorescent nanoprobe NanoDCQ-3 for •OH sensing based on oxidative C–H abstraction of dihydroquinoline to quinoline. The study mainly focused on how to modulate the electronic effects to achieve an ideal ratiometric detection of •OH, as well as solving the inherent problem of hydrophilicity of the probe, so that it was more conducive to monitoring •OH in living organisms. The screened-out probe NanoDCQ-3 exhibited an exceptional ratiometric sensing capability, better biocompatibility, good cellular uptake, and appropriate in vivo retention, which has been reliably used for detecting exogenous •OH concentration fluctuation in living cells and zebrafish models. More importantly, NanoDCQ-3 facilitated visualization of •OH and evaluation of drug treatment efficacy in diabetic mice. These findings afforded a promising strategy for designing ratiometric fluorescent probes for •OH. NanoDCQ-3 emerged as a valuable tool for the detection of •OH in vivo and held potential for drug screening for inflammation-related diseases.
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