Induction of Fenestrae in Human Induced Pluripotent Stem Cell-Derived Endothelial Cells for Disease Modeling.

IF 3.5 3区 医学 Q3 CELL & TISSUE ENGINEERING
Tissue Engineering Part A Pub Date : 2024-02-01 Epub Date: 2024-01-24 DOI:10.1089/ten.TEA.2023.0236
Elana M Meijer, Christian G M van Dijk, Rachel Giles, Karlijn Gijsen, Ihsan Chrifi, Marianne C Verhaar, Caroline Cheng
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Abstract

The endothelial linings of capillaries, such as those in the kidney and small intestines, possess fenestrae that facilitate fluid and exchange of small molecules. Alterations in the size and number of endothelial fenestrae have been implicated in the pathogenesis of various diseases. The re-creation of fenestrated endothelium using human induced pluripotent stem cells (hiPSCs) provides a promising avenue to investigate the involvement of fenestrae in disease mechanisms and pharmacodynamics. In this project, we aim to induce the formation of fenestrae in nonfenestrated hiPSCs-derived endothelial cells (hiPSC-ECs). Vascular endothelial growth factor A (VEGFA) and phorbol myristate acetate (PMA) were used as inducers of fenestrae in hiPSC-ECs. The assessment of fenestrae formation included gene-expression analysis, scanning electron microscopy (SEM), transmission electron microscopy (TEM), and immunofluorescent staining. Endothelial monolayer functionality was evaluated by dextran permeability assays. Stimulation with VEGFA and PMA significantly induced expression of the diaphragmed fenestrae-associated marker, plasmalemmal vesicle-associated protein (PLVAP), in hiPSC-ECs at the mRNA, and protein levels. SEM analysis revealed VEGFA- and PMA-induced fenestrae structures on the cell membrane of hiPSC-ECs. The increased membrane localization of PLVAP visualized by TEM and immunofluorescent staining supported these findings. The induced fenestrated endothelium in hiPSC-ECs demonstrated selective passage of small solutes across a confluent monolayer with intact cell junctions, confirming functional competence. In conclusion, we present a novel methodology for inducing and regulating fenestrated endothelium in hiPSC-ECs. This innovative approach paves the way for the development of fenestrated microvasculature in human organ-on-a-chip systems, enabling complex disease modeling and physiologically relevant investigations of pharmacodynamics.

在 hiPSC 衍生的内皮细胞中诱导 Fenestrae,用于疾病建模。
肾脏和小肠等毛细血管的内皮衬里具有栅栏,可促进液体和小分子物质的交换。内皮栅栏大小和数量的改变与多种疾病的发病机制有关。利用人体诱导多能干细胞(hiPSCs)再造栅栏状内皮为研究栅栏在疾病机制和药效学中的参与提供了一个很有前景的途径。在本项目中,我们的目标是诱导非栅栏化 hiPSCs 衍生内皮细胞(hiPSC-ECs)形成栅栏。我们采用血管内皮生长因子 A(VEGFA)和十六烷醇肉豆蔻酸醋酸酯(PMA)作为 hiPSC-ECs 中栅栏的诱导剂。栅栏形成的评估包括基因表达分析、扫描电子显微镜(SEM)、透射电子显微镜(TEM)和免疫荧光染色。内皮单层功能通过葡聚糖通透性实验进行评估。在 VEGFA 和 PMA 的刺激下,hiPSC-ECs 在 mRNA 和蛋白质水平上明显诱导了膈峡相关标记物 PLVAP 的表达。SEM 分析显示 VEGFA 和 PMA 诱导了 hiPSC-ECs 细胞膜上的栅栏结构。TEM和免疫荧光染色显示的PLVAP膜定位增加也支持了这些发现。在 hiPSC-ECs 中诱导出的栅栏状内皮显示了小溶质穿过汇合单层的选择性通道,细胞连接完好无损,证实了其功能能力。总之,我们提出了一种在 hiPSC-ECs 中诱导和调节栅栏状内皮的新方法。这种创新方法为在人体器官芯片系统中开发栅栏状微血管铺平了道路,使复杂的疾病建模和药效学生理相关研究成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering Part A
Tissue Engineering Part A Chemical Engineering-Bioengineering
CiteScore
9.20
自引率
2.40%
发文量
163
审稿时长
3 months
期刊介绍: Tissue Engineering is the preeminent, biomedical journal advancing the field with cutting-edge research and applications that repair or regenerate portions or whole tissues. This multidisciplinary journal brings together the principles of engineering and life sciences in the creation of artificial tissues and regenerative medicine. Tissue Engineering is divided into three parts, providing a central forum for groundbreaking scientific research and developments of clinical applications from leading experts in the field that will enable the functional replacement of tissues.
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