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原代猪脑微血管内皮细胞作为体外模型研究超声和微泡对血脑屏障功能的影响。

Primary Porcine Brain Endothelial Cells as In Vitro Model to Study Effects of Ultrasound and Microbubbles on Blood-Brain Barrier Function.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2017 Jan;64(1):281-290. doi: 10.1109/TUFFC.2016.2597004. Epub 2016 Aug 1.

Abstract

Focused ultrasound (FUS) in the presence of microbubbles transiently and reversibly opens the blood-brain barrier (BBB) in rodents and humans, thereby providing a time window for increased drug delivery into brain tissue. To get insight into the underlying mechanisms that govern ultrasound (US)-mediated opening of the BBB, in vitro models are a useful alternative. In this paper, we have utilized an in vitro BBB model that consists of primary porcine brain endothelial cells (PBECs). PBEC monolayers are grown on permeable membranes, which allow assessment of key features of BBB function as well as US treatment. This experimental model is characterized by low permeability for both small molecules and proteins, has a high transendothelial electrical resistance, and expresses tight junctions and efflux pumps. Here, we compare the effects of inertial and stable cavitation in the presence of SonoVue microbubbles on PBEC monolayers' electrical resistance and permeability properties. Our results point out the fragility of PBEC monolayers, which enhances results variability. In particular, we show that handling of the inserts, such as medium change and transfer to the US setup, modifies the cellular response, and immunostaining of the monolayers introduces damage and cell detachment within the US-exposed monolayers. Our results indicate that stable cavitation might have a more pronounced impact on cell permeability as compared with inertial cavitation in vitro. This paper might contribute to further development of experimental setups that are suitable to characterize the impact of FUS and microbubbles on BBB properties in vitro.

摘要

聚焦超声(FUS)联合微泡可在啮齿动物和人类中短暂且可逆地打开血脑屏障(BBB),从而为增加药物向脑组织输送提供时间窗口。为深入了解控制超声(US)介导的 BBB 开放的潜在机制,体外模型是一种有用的替代方法。在本文中,我们利用了一种由原代猪脑内皮细胞(PBEC)组成的体外 BBB 模型。PBEC 单层生长在可渗透的膜上,允许评估 BBB 功能的关键特征以及 US 处理。该实验模型的特点是小分子和蛋白质的通透性都很低,具有高跨内皮电阻,并且表达紧密连接和外排泵。在这里,我们比较了存在 SonoVue 微泡时惯性和稳定空化对 PBEC 单层电阻和通透性特性的影响。我们的结果指出了 PBEC 单层的脆弱性,这增加了结果的可变性。特别是,我们表明,插入物的处理,如培养基的更换和转移到 US 设置,会改变细胞反应,并且单层的免疫染色会在 US 暴露的单层内引起损伤和细胞脱落。我们的结果表明,与体外惯性空化相比,稳定空化可能对细胞通透性有更显著的影响。本文可能有助于进一步开发适合体外研究 FUS 和微泡对 BBB 特性影响的实验装置。

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