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超声驱动微泡动力学在药物传递中的作用:从微泡基础到临床转化。

The Role of Ultrasound-Driven Microbubble Dynamics in Drug Delivery: From Microbubble Fundamentals to Clinical Translation.

机构信息

Laboratory of General Biochemistry and Physical Pharmacy, Ghent Research Group on Nanomedicine, Faculty of Pharmaceutical Sciences , Ghent University , Ottergemsesteenweg 460 , Ghent , Belgium.

Physics of Fluids Group, MESA+ Institute for Nanotechnology and Technical Medical (TechMed) Center , University of Twente , P.O. Box 217, 7500 AE Enschede , The Netherlands.

出版信息

Langmuir. 2019 Aug 6;35(31):10173-10191. doi: 10.1021/acs.langmuir.8b03779. Epub 2019 Feb 4.

Abstract

In the last couple of decades, ultrasound-driven microbubbles have proven excellent candidates for local drug delivery applications. Besides being useful drug carriers, microbubbles have demonstrated the ability to enhance cell and tissue permeability and, as a consequence, drug uptake herein. Notwithstanding the large amount of evidence for their therapeutic efficacy, open issues remain. Because of the vast number of ultrasound- and microbubble-related parameters that can be altered and the variability in different models, the translation from basic research to (pre)clinical studies has been hindered. This review aims at connecting the knowledge gained from fundamental microbubble studies to the therapeutic efficacy seen in in vitro and in vivo studies, with an emphasis on a better understanding of the response of a microbubble upon exposure to ultrasound and its interaction with cells and tissues. More specifically, we address the acoustic settings and microbubble-related parameters (i.e., bubble size and physicochemistry of the bubble shell) that play a key role in microbubble-cell interactions and in the associated therapeutic outcome. Additionally, new techniques that may provide additional control over the treatment, such as monodisperse microbubble formulations, tunable ultrasound scanners, and cavitation detection techniques, are discussed. An in-depth understanding of the aspects presented in this work could eventually lead the way to more efficient and tailored microbubble-assisted ultrasound therapy in the future.

摘要

在过去的几十年中,超声驱动的微泡已被证明是局部药物输送应用的优秀候选者。除了作为有用的药物载体外,微泡还表现出增强细胞和组织通透性的能力,因此可以增加药物摄取。尽管有大量证据证明其治疗效果,但仍存在一些问题。由于可以改变的超声和微泡相关参数数量众多,并且不同模型之间存在差异,因此从基础研究到(临床前)临床研究的转化受到了阻碍。本综述旨在将从基础微泡研究中获得的知识与体外和体内研究中观察到的治疗效果联系起来,重点是更好地理解微泡在超声照射下的反应及其与细胞和组织的相互作用。更具体地说,我们解决了在微泡-细胞相互作用和相关治疗效果中起关键作用的声学设置和与微泡相关的参数(即气泡大小和气泡壳的物理化学性质)。此外,还讨论了可能提供更多治疗控制的新技术,例如单分散微泡制剂、可调超声扫描仪和空化检测技术。对本文介绍的方面有深入的了解,最终可能会为未来更有效和更有针对性的微泡辅助超声治疗铺平道路。

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