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Dye/peroxalate aggregated nanoparticles with enhanced and tunable chemiluminescence for biomedical imaging of hydrogen peroxide

机译:染料/过草酸盐聚集的纳米颗粒具有增强的可调节化学发光能力,用于过氧化氢的生物医学成像

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Hydrogen peroxide (H _2O _2) is an endogenous molecule that plays diverse physiological and pathological roles in living systems. Here we report multimolecule integrated nanoprobes with the enhanced chemiluminescence (CL) response to H _2O _2 that is produced in cells and in vivo. This approach is based on the nanoscopic coaggregation of a dye exhibiting aggregation-enhanced fluorescence (AEF) with a H _2O _2-responsive peroxalate that can convert chemical reaction energy into electronic excitation. The coaggregated CL nanoparticles (FPOA NPs) with an average size of ~20 nm were formulated by aqueous self-assembly of a ternary mixture of a surfactant (Pluronic F-127) and concentrated hydrophobic dye/peroxalte payloads. Spectroscopic studies manifest that FPOA NPs as a reagent-concentrated nanoreactor possess the signal enhancement effect by AEF, as well as the optimized efficiencies for H _2O _2 peroxalate reaction and subsequent intraparticle energy transfer to the dye aggregates, to yield greatly enhanced CL generation with a prolonged lifetime. It is shown that the enhanced CL signal thereby is capable of detecting intracellular H _2O _2 overproduced during immune response. We also demonstrate that the densely integrated nature of FPOA NPs facilitates further intraparticle CL energy transfer to a low-energy dopant to red shift the spectrum toward the biologically more transparent optical window, which enables the high-sensitivity in vivo visualization of H _2O _2 associated with early stage inflammation.
机译:过氧化氢(H _2O _2)是一种内源性分子,在生命系统中起着多种生理和病理作用。在这里,我们报告多分子集成纳米探针与增强的化学发光(CL)对细胞和体内产生的H _2O _2的反应。这种方法是基于显示出聚集增强荧光(AEF)的染料与H _2O _2响应过草酸盐的纳米级共聚集,该过草酸盐可以将化学反应能转化为电子激发。通过表面活性剂(Pluronic F-127)和浓缩的疏水性染料/过草酸盐有效载荷的三元混合物的水自组装,配制了平均粒径约为20 nm的共聚CL纳米颗粒(FPOA NPs)。光谱研究表明,FPOA NPs作为试剂浓缩的纳米反应器具有AEF的信号增强作用,以及H _2O _2过草酸盐反应的最佳效率以及随后的颗粒内能量转移至染料聚集体的能力,从而大大增强了CL的生成。延长寿命。结果表明,增强的CL信号能够检测免疫应答期间过量产生的细胞内H _2O _2。我们还证明了FPOA NPs的紧密集成性质有助于进一步将颗粒内CL能量转移到低能掺杂剂,从而使光谱向生物学上更透明的光学窗口红移,从而使H _2O _2相关的体内高灵敏度可视化成为可能。早期炎症。

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