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用于气态信号分子成像的小分子荧光探针:当前进展与未来展望

Small-molecule fluorescent probes for imaging gaseous signaling molecules: current progress and future implications.

作者信息

Yang Mingwang, Fan Jiangli, Du Jianjun, Peng Xiaojun

机构信息

State Key Laboratory of Fine Chemicals, Dalian University of Technology No. 2 Linggong Road Dalian 116024 P. R. China

出版信息

Chem Sci. 2020 Apr 20;11(20):5127-5141. doi: 10.1039/d0sc01482f.


DOI:10.1039/d0sc01482f
PMID:34122970
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8159392/
Abstract

Endogenous gaseous signaling molecules including nitric oxide (NO), carbon monoxide (CO) and hydrogen sulfide (HS) have been demonstrated to perform significant physiological and pharmacological functions and are associated with various diseases in biological systems. In order to obtain a deeper insight into their roles and mechanisms of action, it is desirable to develop novel techniques for effectively detecting gaseous signaling molecules. Small-molecule fluorescent probes have been proven to be a powerful approach for the detection and imaging of biological messengers by virtue of their non-invasiveness, high selectivity, and real-time detection capability. Based on the intrinsic properties of gaseous signaling molecules, numerous fluorescent probes have been constructed to satisfy various demands. In this perspective, we summarize the recent advances in the field of fluorescent probes for the detection of NO, CO and HS and illustrate the design strategies and application examples of these probes. Moreover, we also emphasize the challenges and development directions of gasotransmitter-responsive fluorescent probes, hoping to provide a general implication for future research.

摘要

包括一氧化氮(NO)、一氧化碳(CO)和硫化氢(HS)在内的内源性气体信号分子已被证明具有重要的生理和药理功能,并与生物系统中的各种疾病相关。为了更深入地了解它们的作用和作用机制,需要开发有效检测气体信号分子的新技术。小分子荧光探针凭借其非侵入性、高选择性和实时检测能力,已被证明是检测和成像生物信使的有力方法。基于气体信号分子的固有特性,人们构建了许多荧光探针以满足各种需求。从这个角度出发,我们总结了用于检测NO、CO和HS的荧光探针领域的最新进展,并阐述了这些探针的设计策略和应用实例。此外,我们还强调了气体递质响应荧光探针面临的挑战和发展方向,希望为未来的研究提供一般性启示。

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本文引用的文献

[1]
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[2]
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Chem Sci. 2018-10-10

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Chem Sci. 2018-10-3

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