Department of Medicinal Chemistry, Key Laboratory of Chemical Biology, School of Pharmacy, Cheeloo College of Medicine, Shandong University, Jinan, Shandong 250012, China.
School of Pharmacy, Guangxi Medical University, Nanning, Guangxi 530021, China.
Org Biomol Chem. 2022 Feb 16;20(7):1360-1372. doi: 10.1039/d1ob01940f.
Bioluminescence imaging (BLI) is a widely applied visual approach for real-time detecting many physiological and pathological processes in a variety of biological systems. Based on the caging strategy, lots of bioluminescent probes have been well developed. While the targets react with recognizable groups, caged luciferins liberate luciferase substrates, which react with luciferase generating a bioluminescent response. Among the various bioluminescent systems, the most widely utilized bioluminescent system is the firefly luciferin system. The H and carboxylic acid of luciferin are critically caged sites. The introduced self-immolative linker extends the applications of probes. Firefly luciferin system probes have been successfully applied for analyzing physiological processes, monitoring the environment, diagnosing diseases, screening candidate drugs, and evaluating the therapeutic effect. Here, we systematically review the general design strategies of firefly luciferin bioluminescence probes and their applications. Bioluminescence probes provide a new approach for facilitating investigation in a diverse range of fields. It inspires us to explore more robust light emission luciferin and novel design strategies to develop bioluminescent probes.
生物发光成像是一种广泛应用的可视化方法,可实时检测多种生物系统中的许多生理和病理过程。基于笼状策略,已经开发了许多生物发光探针。当目标与可识别的基团反应时,被笼状束缚的荧光素会释放出荧光酶底物,与荧光酶反应产生生物发光反应。在各种生物发光系统中,应用最广泛的生物发光系统是萤火虫荧光素系统。荧光素的 H 和羧酸基团是关键的笼状位点。引入的自毁性连接子扩展了探针的应用。萤火虫荧光素系统探针已成功应用于分析生理过程、监测环境、诊断疾病、筛选候选药物和评估治疗效果。在这里,我们系统地综述了萤火虫荧光素生物发光探针的一般设计策略及其应用。生物发光探针为促进多个领域的研究提供了一种新方法。它激励我们探索更强大的发光荧光素和新颖的设计策略来开发生物发光探针。