State Key Laboratory of Chemical Resource Engineering, College of Chemistry, Beijing University of Chemical Technology, Beijing 10010, PR China.
MOE Key Laboratory for Analytical Science of Food Safety and Biology, College of Chemistry, Fuzhou University, Fuzhou 350108, China.
Acc Chem Res. 2023 Nov 21;56(22):3223-3234. doi: 10.1021/acs.accounts.3c00495. Epub 2023 Nov 7.
Optical imaging and photoacoustic (PA) imaging have become essential tools to investigate physiological or pathological processes at the molecular level . The detection of variations at the molecular level is particularly important owing to the rapid progression of diseases. However, most studies have mainly focused on plain qualitative molecular imaging and detection, which is characterized by the absence of a reference signal in one-channel responsive imaging. To overcome the limitation and quantitatively detect molecules , this Account reviews the recent contributions of our group to the quantitative imaging field in the form of ratiometric optical and PA imaging in the second near-infrared window (NIR-II, 950-1700 nm).In this Account, we present recent advances that our group has made in ratiometric imaging probe design and biomedical applications by constructing probes based on ratiometric optical imaging and ratiometric PA imaging. First, we highlight the design strategies of ratiometric optical probes that were based on organic ratiometric molecular probes, radio-activated organic ratiometric probes, and hybrid organic-inorganic assembled ratiometric probes. Subsequently, the design strategies of the ratiometric NIR-II optical nanoprobes with activated bioluminescence resonance energy transfer (BRET), Förster resonance energy transfer (FRET), and nonradiative energy transfer (NRET) effects provide a reliable tool to achieve the ratiometric detection of endogenous signaling molecules and thereby apply it to the monitoring and evaluation of the efficacy of photodynamic therapy, radiotherapy, and immunotherapy to guide the treatment process. In addition, we systematically introduce the functional design principles of ratiometric PA imaging probes based on core-shell nanoprobes, core-satellite nanoprobes, and universal hybrid nanoprobes, where we have established that reference signal and sensing signal can be obtained from the random assortment of plasmonic components and organic semiconducting molecules using a phase separation strategy. On these insights, we discuss the rational and detailed biomedical applications of ratiometric PA imaging probes which include accurate quantitative detection of disease-related molecules in inflammation or tumors in real time. In these champion implementations of ratiometric PA imaging probes, different diagnostic modules have been linked through compound modification with activation characteristics (e.g., pH, redox, enzyme, hypoxia). Finally, we present the challenges and perspectives for ratiometric probes based on optical imaging and PA imaging for multitarget design and future clinical translation. We believe that the upcoming generations of ratiometric imaging probes would have promising potential applications in the precise diagnosis of diseases. Finally, this Account may stimulate innovative studies in the design of ratiometric imaging probes and exploration of their clinical applications.
光学成像和光声(PA)成像已成为研究分子水平生理或病理过程的重要工具。由于疾病的快速发展,对分子水平变化的检测尤为重要。然而,大多数研究主要集中在普通的定性分子成像和检测上,其特征是在单通道响应成像中没有参考信号。为了克服这一限制并定量检测分子,本综述以我们小组在近红外二区(NIR-II,950-1700nm)中基于比率光学和 PA 成像的定量成像领域的最新贡献形式,回顾了最近的研究进展。在本综述中,我们通过构建基于比率光学成像和比率 PA 成像的探针,介绍了我们小组在比率成像探针设计和生物医学应用方面的最新进展。首先,我们重点介绍了基于有机比率分子探针、放射性有机比率探针和混合有机-无机组装比率探针的比率光学探针的设计策略。随后,设计了具有激活生物发光共振能量转移(BRET)、Förster 共振能量转移(FRET)和非辐射能量转移(NRET)效应的比率 NIR-II 光学纳米探针,为实现内源性信号分子的比率检测提供了可靠的工具,并将其应用于光动力治疗、放射治疗和免疫治疗疗效的监测和评估,以指导治疗过程。此外,我们系统地介绍了基于核壳纳米探针、核卫星纳米探针和通用混合纳米探针的比率 PA 成像探针的功能设计原则,其中我们已经建立了可以通过使用相分离策略从等离子体组件和有机半导体分子的随机组合中获得参考信号和传感信号的原则。在此基础上,我们讨论了比率 PA 成像探针在炎症或肿瘤中实时准确定量检测疾病相关分子等方面的合理而详细的生物医学应用。在这些比率 PA 成像探针的成功应用中,通过化合物修饰与激活特性(如 pH 值、氧化还原、酶、缺氧)相链接,不同的诊断模块得以实现。最后,我们提出了基于光学成像和 PA 成像的比率探针在多靶设计和未来临床转化方面的挑战和展望。我们相信,新一代比率成像探针在疾病的精确诊断中具有广阔的应用前景。最后,本综述可能会激发比率成像探针设计和临床应用探索方面的创新性研究。
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