并行传输
跨细胞
跨细胞
体内
体外
磁导率
生物物理学
囊泡转运蛋白
生物
血管通透性
细胞生物学
化学
受体
生物化学
内吞作用
膜
生物技术
内分泌学
小泡
作者
Giovanni S. Offeddu,Kristina Haase,Mark R. Gillrie,Ran Li,Olga A. Morozova,Dean Hickman,Charles G. Knutson,Roger D. Kamm
出处
期刊:Biomaterials
[Elsevier]
日期:2019-08-01
卷期号:212: 115-125
被引量:79
标识
DOI:10.1016/j.biomaterials.2019.05.022
摘要
Recent therapeutic success of large-molecule biologics has led to intense interest in assays to measure with precision their transport across the vascular endothelium and into the target tissue. Most current in vitro endothelial models show unrealistically large permeability coefficients due to a non-physiological paracellular transport. Thus, more advanced systems are required to better recapitulate and discern the important contribution of transcellular transport (transcytosis), particularly of pharmaceutically-relevant proteins. Here, a robust platform technology for the measurement of transport through a human endothelium is presented, which utilizes in vitro microvascular networks (MVNs). The self-assembled MVNs recapitulate the morphology and junctional complexity of in vivo capillaries, and express key endothelial vesicular transport proteins. This results in measured permeabilities to large molecules comparable to those observed in vivo, which are orders of magnitude lower than those measured in transwells. The permeability of albumin and immunoglobulin G (IgG), biopharmaceutically-relevant proteins, is shown to occur primarily via transcytosis, with passage of IgG regulated by the receptor FcRn. The physiological relevance of the MVNs make it a valuable tool to assess the distribution of biopharmaceuticals into tissues, and may be used to prioritize candidate molecules from this increasingly important class of therapeutics.
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