A Mitochondria-Targeted Fluorescence/Photoacoustic Dual-Modality imaging probe for Hypochlorous Acid-Related inflammatory Responses in vivo

IF 4.7 3区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Photochemistry and Photobiology A-chemistry Pub Date : 2024-12-21 DOI:10.1016/j.jphotochem.2024.116232
Yonghe Liao , Tingzhuang Yi , Xiaoyan Su , Shuixiu Chen , Mingyue Lu , Xianxian Huang , Yanchun Yang , Xiangqing Qin , Chunli Tang , Yiheng Zhao , Hong Huang , Junjie Tan , Zhiming Yan , Neng Jiang
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Abstract

Hypochlorous acid (HClO) is a crucial endogenous reactive oxygen species (ROS) that is widely regarded as a representative of ROS. The excessive accumulation of HClO has been intimately linked to tissue damage and a myriad of diseases. Notably, mitochondria, the primary energy factories within cells, also serve as crucial sites for the generation of HClO. Consequently, the detection of intracellular mitochondrial HClO holds significant importance. In this study, we have designed and synthesized a novel near-infrared fluorescence (NIRF)/photoacoustic (PA) dual-modality probe, designated as MB-TPP. MB-TPP exhibits outstanding selectivity towards HClO, rapid fluorescence switching response (< 5 s). MB-TPP demonstrates remarkable sensitivity for HClO detection (LOD = 0.075 μM). Furthermore, MB-TPP possesses favorable water solubility and mitochondrial targeting capability. The application of MB-TPP has been validated in biological models such as zebrafish and mice, where it achieves excellent NIRF imaging of endogenous and exogenous HClO. Remarkably, MB-TPP possesses the capability to perform PA imaging of HClO ex vivo, exhibiting a linear detection efficiency. Moreover, MB-TPP demonstrated its capability for NIRF/PA dual-modality imaging in the mice model of rheumatoid arthritis. As a powerful NIRF/PA imaging visualization tool, MB-TPP holds immense promise for monitoring and investigating HClO-related inflammatory diseases, particularly those associated with mitochondrial function in biological contexts, thereby underscoring its broad application potential and significant value in the fields of biomedical research and clinical diagnostics.

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线粒体靶向荧光/光声双模成像探针用于体内次氯酸相关炎症反应
次氯酸(HClO)是一种重要的内源性活性氧(ROS),被广泛认为是ROS的代表。HClO的过度积累与组织损伤和无数疾病密切相关。值得注意的是,线粒体是细胞内的主要能量工厂,也是生成HClO的关键位点。因此,细胞内线粒体HClO的检测具有重要意义。在这项研究中,我们设计并合成了一种新型的近红外荧光(NIRF)/光声(PA)双模探针,命名为MB-TPP。MB-TPP对HClO具有出色的选择性,快速的荧光开关响应(<;MB-TPP对HClO检测具有显著的灵敏度(LOD = 0.075 μM)。此外,MB-TPP具有良好的水溶性和线粒体靶向能力。MB-TPP的应用已经在斑马鱼和小鼠等生物模型中得到验证,在这些模型中,MB-TPP实现了内源性和外源性HClO的优异NIRF成像。值得注意的是,MB-TPP具有对HClO进行离体PA成像的能力,具有线性检测效率。此外,MB-TPP在类风湿关节炎小鼠模型中显示了其对NIRF/PA双模成像的能力。MB-TPP作为一种强大的NIRF/PA成像可视化工具,在监测和研究hcl相关炎症疾病,特别是与线粒体功能相关的炎症疾病的生物学背景下具有巨大的前景,从而强调了其在生物医学研究和临床诊断领域的广泛应用潜力和重要价值。
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来源期刊
CiteScore
7.90
自引率
7.00%
发文量
580
审稿时长
48 days
期刊介绍: JPPA publishes the results of fundamental studies on all aspects of chemical phenomena induced by interactions between light and molecules/matter of all kinds. All systems capable of being described at the molecular or integrated multimolecular level are appropriate for the journal. This includes all molecular chemical species as well as biomolecular, supramolecular, polymer and other macromolecular systems, as well as solid state photochemistry. In addition, the journal publishes studies of semiconductor and other photoactive organic and inorganic materials, photocatalysis (organic, inorganic, supramolecular and superconductor). The scope includes condensed and gas phase photochemistry, as well as synchrotron radiation chemistry. A broad range of processes and techniques in photochemistry are covered such as light induced energy, electron and proton transfer; nonlinear photochemical behavior; mechanistic investigation of photochemical reactions and identification of the products of photochemical reactions; quantum yield determinations and measurements of rate constants for primary and secondary photochemical processes; steady-state and time-resolved emission, ultrafast spectroscopic methods, single molecule spectroscopy, time resolved X-ray diffraction, luminescence microscopy, and scattering spectroscopy applied to photochemistry. Papers in emerging and applied areas such as luminescent sensors, electroluminescence, solar energy conversion, atmospheric photochemistry, environmental remediation, and related photocatalytic chemistry are also welcome.
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