流诱导屏障和糖萼相关基因和负表面电荷在实验室芯片上的人血脑屏障模型。

Ana R Santa-Maria, Fruzsina R Walter, Ricardo Figueiredo, András Kincses, Judit P Vigh, Marjolein Heymans, Maxime Culot, Peter Winter, Fabien Gosselet, András Dér, Mária A Deli
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引用次数: 24

摘要

微流控芯片实验室(LOC)设备允许在动态条件下研究血脑屏障(BBB)特性。我们在LOC装置中研究了由造血干细胞衍生的人内皮细胞与脑周细胞共同培养的血脑屏障模型,以研究流体流动对内皮、血脑屏障和糖萼相关基因和表面电荷的调节。高负电荷的内皮细胞表面糖基作为机械传感器检测血流在脑内皮细胞管腔侧产生的剪切力,并有助于血脑屏障的物理屏障。尽管糖萼在生理条件和疾病中对血脑屏障通透性的调节具有重要作用,但其潜在机制尚不清楚。MACE-seq基因表达谱分析显示,液体流动后内皮、血脑屏障和糖萼核心蛋白基因表达差异,细胞外基质分子通路富集。我们观察到在动态条件下,人脑样内皮细胞(BLECs)的屏障特性增加,糖萼染色强度更高,表面负电荷更多。我们的研究首次提供了动态条件下LOC装置中血脑屏障性质和糖萼的数据,并证实了流体流动对血脑屏障培养模型的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Flow induces barrier and glycocalyx-related genes and negative surface charge in a lab-on-a-chip human blood-brain barrier model.

Flow induces barrier and glycocalyx-related genes and negative surface charge in a lab-on-a-chip human blood-brain barrier model.

Microfluidic lab-on-a-chip (LOC) devices allow the study of blood-brain barrier (BBB) properties in dynamic conditions. We studied a BBB model, consisting of human endothelial cells derived from hematopoietic stem cells in co-culture with brain pericytes, in an LOC device to study fluid flow in the regulation of endothelial, BBB and glycocalyx-related genes and surface charge. The highly negatively charged endothelial surface glycocalyx functions as mechano-sensor detecting shear forces generated by blood flow on the luminal side of brain endothelial cells and contributes to the physical barrier of the BBB. Despite the importance of glycocalyx in the regulation of BBB permeability in physiological conditions and in diseases, the underlying mechanisms remained unclear. The MACE-seq gene expression profiling analysis showed differentially expressed endothelial, BBB and glycocalyx core protein genes after fluid flow, as well as enriched pathways for the extracellular matrix molecules. We observed increased barrier properties, a higher intensity glycocalyx staining and a more negative surface charge of human brain-like endothelial cells (BLECs) in dynamic conditions. Our work is the first study to provide data on BBB properties and glycocalyx of BLECs in an LOC device under dynamic conditions and confirms the importance of fluid flow for BBB culture models.

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