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聚焦超声介导载磁铁纳米复合微囊的荧光效应:体外与体内研究。

Focused ultrasound-mediated fluorescence of composite microcapsules loaded with magnetite nanoparticles: In vitro and in vivo study.

机构信息

Skolkovo Institute of Science and Technology, 3 Nobelya Str., Moscow, 143025, Russia.

Saratov State University, 83 Astrakhanskaya Str., Saratov, 410012, Russia.

出版信息

Colloids Surf B Biointerfaces. 2019 Sep 1;181:680-687. doi: 10.1016/j.colsurfb.2019.06.025. Epub 2019 Jun 14.

Abstract

High intensity focused ultrasound (HIFU) is widely used in medical practice, including cancer therapy. Also this approach is promising for remote release of encapsulated drugs in various other biomedical applications where local treatment is needed. Our approach underpins the minimization of HIFU impact on possible degradation of biological tissues and expand the use of HIFU in the controlled release of encapsulated drugs. We demonstrated the efficient ultrasound-induced release of labeled protein (Cy7-BSA) from elaborated nanocomposite microcapsules in vitro an in vivo. The capsule fabrication was done using combination of recently developed freezing-induced loading (FIL) technique and Layer-by-Layer assembly (LbL) used for the preparation of complex multilayer BSA/tannic acid nanocomposite capsules sensitive to HIFU. These capsules contain NIR fluorescent Cy7-labeled BSA in the shell for tracking in vivo and the high concentration of labels inside the capsules resulted in self-quenching provides the real-time detection of the protein once it is released from the capsule. Ultrasound-induced release in vivo of Cy7-labeled BSA initially quenched by magnetite nanoparticles was confirmed by fluorescent tomography. The significant decrease of Cy7 fluorescence under HIFU treatment in vitro was found to be due to a generation of reactive oxygen species and fast dye oxidation. Our results demonstrate that adapted HIFU setup can be used for the directed release of encapsulated substances in vivo under tissue compatible NIR monitoring by fluorescent tomography.

摘要

高强度聚焦超声(HIFU)在医学实践中得到广泛应用,包括癌症治疗。这种方法也有望在其他各种需要局部治疗的生物医学应用中,实现封装药物的远程释放。我们的方法可以最大限度地减少 HIFU 对生物组织可能降解的影响,并扩大 HIFU 在封装药物的控制释放中的应用。我们在体外和体内证明了标记蛋白(Cy7-BSA)从精心设计的纳米复合微胶囊中通过超声诱导的有效释放。使用最近开发的冷冻诱导加载(FIL)技术和用于制备对 HIFU 敏感的复杂多层 BSA/鞣酸纳米复合胶囊的层层组装(LbL)的组合来进行胶囊的制造。这些胶囊的壳层中含有近红外荧光 Cy7 标记的 BSA,用于体内跟踪,而胶囊内部的高浓度标记物会导致自猝灭,从而在蛋白质从胶囊中释放后实时检测到它。通过荧光断层扫描证实了体内超声诱导释放的 Cy7 标记的 BSA 最初被磁铁矿纳米粒子猝灭。发现体外 HIFU 处理下 Cy7 荧光的显著降低是由于活性氧的产生和染料的快速氧化。我们的研究结果表明,经过适应性调整的 HIFU 设备可以在组织相容的近红外荧光断层扫描监测下,在体内用于定向释放封装物质。

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