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Labeling the Structural Integrity of Nanoparticles for Advanced In Situ Tracking in Bionanotechnology

机译:标记纳米粒子的结构完整性,以便在生物纳米技术中进行高级原位跟踪

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Observing structural integrity of nanoparticles is essential in bionanotechnology but not always straightforward to measure in situ and in real-time. labels used for tracking intrinsically non fluorescent nanomaterials generally do not allow simultaneous observation of integrity. Consequently, structural changes like degradation and disassembly cannot easily be followed in situ using fluorescence signals. We show that thioflavin T (ThT), a fluorophore and molecular rotor known to tag specific fibril structures in amyloids, can "label" the structural integrity of widely used and intrinsically nonfluorescent, silica nanoparticles (SiNPs). Entrapment of ThT in SiNPs controls the fluorohphore's relaxation pathway and leads to a red-shifted fluorescence spectrum providing real time information on SiNP integrity. The dynamic change of ThT fluorescence during degradation of doped SiNPs is found much higher than that of common labels fluorescein and rhodamine. Degradation kinetics of core shell structures recorded by ThT fluorescence and light scattering prove the capability to clearly distinguish structural features during SiNPs degradation and allow obtaining degradation kinetics in vitro, in biological media, in serum, and in cells. The effect is transferable to different types of materials, here shown for ThT incorporated SiNPs with tightly tailorable sizes (9-100 nm), poly(lactic-co-glycolic acid) (PLGA) nanoparticles, poly(9-vinylcarbazole) (PVK) nanoparticles, and iron-doped-SiNPs (FeSiNPs). We thus suggest molecular rotors such as ThT as additional labels to effectively and easily sense nanoparticle structural status in situ and to enhance understanding and development of programmed nanoparticle disassembly in bionanotechnology.
机译:在纳米生物技术中,观察纳米颗粒的结构完整性是必不可少的,但并不总是很容易就地和实时进行测量。用于追踪本质上非荧光纳米材料的标记通常不允许同时观察完整性。因此,使用荧光信号不能轻易地原位跟踪结构变化,如降解和分解。我们表明,硫代黄素T(ThT),一种荧光团和已知在淀粉样蛋白中标记特定原纤维结构的分子转子,可以“标记”广泛使用的和本质上无荧光的二氧化硅纳米粒子(SiNPs)的结构完整性。 ThT在SiNPs中的捕获控制了荧光团的弛豫途径,并导致红移的荧光光谱,从而提供了有关SiNP完整性的实时信息。发现在掺杂的SiNP降解过程中ThT荧光的动态变化远高于普通标记的荧光素和若丹明。 ThT荧光和光散射记录的核壳结构的降解动力学证明了能够在SiNPs降解过程中清楚地区分结构特征的能力,并允许在体外,生物介质,血清和细胞中获得降解动力学。效果可转移到不同类型的材料上,此处显示的是ThT掺入的SiNPs,具有紧密定制的尺寸(9-100 nm),聚乳酸-乙醇酸(PLGA)纳米颗粒,聚(9-乙烯基咔唑)(PVK)纳米颗粒和铁掺杂的SiNPs(FeSiNPs)。因此,我们建议使用分子转子(例如ThT)作为附加标记,以有效,轻松地就地感知纳米颗粒的结构状态,并增强对纳米技术中程序化纳米颗粒拆卸的了解和发展。

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