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用于表征超声触发药物释放的荧光标记微泡的多时间尺度显微镜方法

Multi-timescale Microscopy Methods for the Characterization of Fluorescently-labeled Microbubbles for Ultrasound-Triggered Drug Release.

作者信息

Nawijn Charlotte, Segers Tim, Lajoinie Guillaume, Mørch Ýrr, Berg Sigrid, Snipstad Sofie, de Lange Davies Catharina, Versluis Michel

机构信息

Physics of Fluids group, Department of Science and Technology, MESA+ Institute for Nanotechnology and Technical Medical (TechMed) Center, University of Twente;

Physics of Fluids group, Department of Science and Technology, MESA+ Institute for Nanotechnology and Technical Medical (TechMed) Center, University of Twente; BIOS Lab-on-a-Chip group, Max Planck Center Twente for Complex Fluid Dynamics, MESA+ Institute for Nanotechnology and Technical Medical (TechMed) Center, University of Twente.

出版信息

J Vis Exp. 2021 Jun 12(172). doi: 10.3791/62251.

Abstract

Microbubble contrast agents hold great promise for drug delivery applications with ultrasound. Encapsulating drugs in nanoparticles reduces systemic toxicity and increases circulation time of the drugs. In a novel approach to microbubble-assisted drug delivery, nanoparticles are incorporated in or on microbubble shells, enabling local and triggered release of the nanoparticle payload with ultrasound. A thorough understanding of the release mechanisms within the vast ultrasound parameter space is crucial for efficient and controlled release. This set of presented protocols is applicable to microbubbles with a shell containing a fluorescent label. Here, the focus is on microbubbles loaded with poly(2-ethyl-butyl cyanoacrylate) polymeric nanoparticles, doped with a modified Nile Red dye. The particles are fixed within a denatured casein shell. The microbubbles are produced by vigorous stirring, forming a dispersion of perfluoropropane gas in the liquid phase containing casein and nanoparticles, after which the microbubble shell self-assembles. A variety of microscopy techniques are needed to characterize the nanoparticle-stabilized microbubbles at all relevant timescales of the nanoparticle release process. Fluorescence of the nanoparticles enables confocal imaging of single microbubbles, revealing the particle distribution within the shell. In vitro ultra-high-speed imaging using bright-field microscopy at 10 million frames per second provides insight into the bubble dynamics in response to ultrasound insonation. Finally, nanoparticle release from the bubble shell is best visualized by means of fluorescence microscopy, performed at 500,000 frames per second. To characterize drug delivery in vivo, the triggered release of nanoparticles within the vasculature and their extravasation beyond the endothelial layer is studied using intravital microscopy in tumors implanted in dorsal skinfold window chambers, over a timescale of several minutes. The combination of these complementary characterization techniques provides unique insight into the behavior of microbubbles and their payload release at a range of time and length scales, both in vitro and in vivo.

摘要

微泡造影剂在超声辅助药物递送应用方面前景广阔。将药物包裹在纳米颗粒中可降低全身毒性并延长药物的循环时间。在一种微泡辅助药物递送的新方法中,纳米颗粒被整合到微泡壳内或壳上,从而能够通过超声实现纳米颗粒所载药物的局部和触发释放。深入了解广阔超声参数空间内的释放机制对于高效和可控释放至关重要。这组所展示的方案适用于带有含荧光标记壳层的微泡。在此,重点是负载聚(2 - 乙基 - 丁基氰基丙烯酸酯)聚合物纳米颗粒并掺杂改性尼罗红染料的微泡。这些颗粒固定在变性酪蛋白壳内。微泡通过剧烈搅拌产生,在含有酪蛋白和纳米颗粒的液相中形成全氟丙烷气体的分散体,之后微泡壳自组装。需要多种显微镜技术在纳米颗粒释放过程的所有相关时间尺度上对纳米颗粒稳定的微泡进行表征。纳米颗粒的荧光能够对单个微泡进行共聚焦成像,揭示壳内颗粒分布。使用每秒1000万帧的明场显微镜进行体外超高速成像可深入了解微泡对超声照射的动力学响应。最后,通过每秒50万帧的荧光显微镜观察能最好地可视化纳米颗粒从泡壳的释放。为了在体内表征药物递送,利用活体显微镜在植入背部皮褶窗口室的肿瘤中研究纳米颗粒在脉管系统内的触发释放及其在内皮细胞层外的渗出情况,时间尺度为几分钟。这些互补表征技术的结合为体外和体内不同时间和长度尺度下微泡及其所载药物释放的行为提供了独特见解。

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