Ultrasensitive Near-Infrared Fluorescence-Enhanced Probe for in Vivo Nitroreductase Imaging

IF 15.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Yuhao Li, Yun Sun, Jiachang Li, Qianqian Su, Wei Yuan, Yu Dai, Chunmiao Han, Qiuhong Wang, Wei Feng*, Fuyou Li*
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引用次数: 346

Abstract

Nitroreductase (NTR) can be overexpressed in hypoxic tumors, thus the selective and efficient detection of NTR is of great importance. To date, although a few optical methods have been reported for the detection of NTR in solution, an effective optical probe for NTR monitoring in vivo is still lacking. Therefore, it is necessary to develop a near-infrared (NIR) fluorescent detection probe for NTR. In this study, five NIR cyanine dyes with fluorescence reporting structure decorated with different nitro aromatic groups, Cy7-1–5, have been designed and explored for possible rapid detection of NTR. Our experimental results presented that only a para-nitro benzoate group modified cyanine probe (Cy7-1) could serve as a rapid NIR fluorescence-enhanced probe for monitoring and bioimaging of NTR. The structure–function relationship has been revealed by theoretical study. The linker connecting the detecting and fluorescence reporting groups and the nitro group position is a key factor for the formation of hydrogen bonds and spatial structure match, inducing the NTR catalytic ability enhancement. The in vitro response and mechanism of the enzyme-catalyzed reduction of Cy7-1 have been investigated through kinetic optical studies and other methods. The results have indicated that an electro-withdrawing group induced electron-transfer process becomes blocked when Cy7-1 is catalytically reduced to Cy7-NH2 by NTR, which is manifested in enhanced fluorescence intensity during the detection process. Confocal fluorescence imaging of hypoxic A549 cells has confirmed the NTR detection ability of Cy7-1 at the cellular level. Importantly, Cy7-1 can detect tumor hypoxia in a murine hypoxic tumor model, showing a rapid and significant enhancement of its NIR fluorescence characteristics suitable for fluorescence bioimaging. This method may potentially be used for tumor hypoxia diagnosis.

Abstract Image

用于体内硝基还原酶成像的超灵敏近红外荧光增强探针
硝基还原酶(Nitroreductase, NTR)在缺氧肿瘤中可过表达,因此选择性、高效地检测NTR具有重要意义。迄今为止,虽然有一些光学方法被报道用于检测溶液中的NTR,但一种有效的用于体内NTR监测的光学探针仍然缺乏。因此,有必要研制一种近红外荧光检测NTR探针。本研究设计并探索了5种具有荧光报告结构的近红外菁菁染料,这些染料由不同的硝基芳香基团Cy7-1-5修饰,可用于快速检测NTR。我们的实验结果表明,只有对硝基苯甲酸酯修饰的菁氨酸探针(Cy7-1)可以作为NTR监测和生物成像的快速近红外荧光增强探针。理论研究揭示了结构与功能的关系。连接检测和荧光报告基团与硝基位置的连接体是形成氢键和空间结构匹配的关键因素,诱导NTR催化能力增强。通过动力学光学等方法研究了酶催化Cy7-1还原的体外反应及其机制。结果表明,当Cy7-1被NTR催化还原为Cy7-NH2时,电吸基团诱导的电子转移过程被阻断,在检测过程中表现为荧光强度增强。缺氧A549细胞的共聚焦荧光成像证实了Cy7-1在细胞水平上对NTR的检测能力。重要的是,Cy7-1可以在小鼠缺氧肿瘤模型中检测肿瘤缺氧,显示出快速而显著的近红外荧光特性增强,适合荧光生物成像。该方法有可能用于肿瘤缺氧诊断。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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