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体外受损的肺泡毛细血管屏障:促炎细胞因子的作用及其对纳米载体相互作用的影响。

An impaired alveolar-capillary barrier in vitro: effect of proinflammatory cytokines and consequences on nanocarrier interaction.

机构信息

Institute of Pathology, Medical University of Mainz, Johannes Gutenberg University, Langenbeckstrasse 1, Mainz 55101, Germany.

出版信息

J R Soc Interface. 2010 Feb 6;7 Suppl 1(Suppl 1):S41-54. doi: 10.1098/rsif.2009.0288.focus. Epub 2009 Sep 30.

Abstract

The alveolar region of the lung is an important target for drug and gene delivery approaches. Treatment with drugs is often necessary under pathophysiological conditions, in which there is acute inflammation of the target organ. Therefore, in vitro models of the alveolar-capillary barrier, which mimic inflammatory conditions in the alveolar region, would be useful to analyse and predict effects of novel drugs on healthy or inflamed tissues. The epithelial cell line H441 was cultivated with primary isolated human pulmonary microvascular endothelial cells (HPMECs) or the endothelial cell line ISO-HAS-1 on opposite sides of a permeable filter support under physiological and inflammatory conditions. Both epithelial and endothelial cell types grew as polarized monolayers in bilayer coculture and were analysed in the presence and absence of the proinflammatory stimuli tumour necrosis factor-alpha (TNF-alpha) and interferon-gamma (IFN-gamma). In addition, the nanocarrier polyethyleneimine (PEI) was chosen as a model compound to study cell uptake (Oregon Green (OG)-labelled PEI) and gene transfer (PEI-pDNA complex). Upon treatment with TNF-alpha and IFN-gamma, both cocultures exhibited comparable effects on the trans-bilayer electrical resistance, the transport of sodium fluorescein and the increase in secondary cytokine release. Basolateral (endothelial side) exposure to TNF-alpha or simultaneous exposure to TNF-alpha and IFN-gamma generated an alveolar-capillary barrier with inflammation-like characteristics, impaired barrier function and a local disruption of the continuous apical labelling of the tight junction plaque protein zonula occludens-1 (ZO-1). Although transfection rates of 8 per cent were obtained for H441 cells in non-polarized monocultures, apical-basolateral-differentiated (polarized) H441 in coculture could not be transfected. After basolateral cytokine exposure, uptake of fluorescently labelled PEI in polarized H441 was predominantly detected in those areas with a local disruption of ZO-1 expression. Accordingly, transfected cells were only sparsely found in coculture after basolateral costimulation with TNF-alpha and IFN-gamma. We designed a coculture model that mimics both the structural architecture of the alveolar-capillary barrier and inflammatory mechanisms with consequences on barrier characteristics, cytokine production and nanoparticle interaction. Our model will be suitable to systematically study adsorption, uptake and trafficking of newly synthesized nanosized carriers under different physiological conditions.

摘要

肺的肺泡区域是药物和基因传递方法的重要靶标。在病理生理条件下,经常需要用药物治疗,在这种情况下,靶器官会发生急性炎症。因此,模拟肺泡区域炎症状态的肺泡-毛细血管屏障的体外模型将有助于分析和预测新型药物对健康或炎症组织的影响。上皮细胞系 H441 与原代分离的人肺微血管内皮细胞(HPMEC)或内皮细胞系 ISO-HAS-1 在可渗透滤器支架的两侧培养,在生理和炎症条件下。在存在和不存在促炎刺激物肿瘤坏死因子-α(TNF-α)和干扰素-γ(IFN-γ)的情况下,上皮细胞和内皮细胞均在双层共培养物中作为极化单层生长,并进行分析。此外,选择聚乙烯亚胺(PEI)作为模型化合物来研究细胞摄取(Oregon Green(OG)标记的 PEI)和基因转移(PEI-pDNA 复合物)。在用 TNF-α和 IFN-γ处理后,两种共培养物在跨双层电阻、荧光素钠转运和二级细胞因子释放增加方面表现出相似的作用。基底外侧(内皮侧)暴露于 TNF-α或同时暴露于 TNF-α和 IFN-γ会产生具有炎症样特征的肺泡-毛细血管屏障,损害屏障功能,并局部破坏紧密连接斑块蛋白闭合蛋白-1(ZO-1)的连续顶端标记。尽管在非极化的单核培养物中获得了 8%的转染率,但在共培养物中不能对顶端-基底分化(极化)的 H441 进行转染。在基底外侧细胞因子暴露后,在具有局部 ZO-1 表达破坏的区域中,主要检测到荧光标记的 PEI 的摄取。因此,在用 TNF-α和 IFN-γ基底外侧共刺激后,仅在共培养物中稀疏地发现转染的细胞。我们设计了一种共培养模型,该模型模拟了肺泡-毛细血管屏障的结构架构和炎症机制,对屏障特性、细胞因子产生和纳米颗粒相互作用产生影响。我们的模型将适用于在不同生理条件下系统地研究新合成的纳米载体的吸附、摄取和运输。

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