Kurokawa Yosuke K, Yin Rose T, Shang Michael R, Shirure Venktesh S, Moya Monica L, George Steven C
1 Department of Biomedical Engineering, Washington University in St. Louis , St. Louis, Missouri.
2 Center for Micro and Nano Technology, Materials Engineering Division, Lawrence Livermore National Laboratory, Livermore, California.
Tissue Eng Part C Methods. 2017 Aug;23(8):474-484. doi: 10.1089/ten.TEC.2017.0133.
Microphysiological systems (MPS), or "organ-on-a-chip" platforms, aim to recapitulate in vivo physiology using small-scale in vitro tissue models of human physiology. While significant efforts have been made to create vascularized tissues, most reports utilize primary endothelial cells that hinder reproducibility. In this study, we report the use of human induced pluripotent stem cell-derived endothelial cells (iPS-ECs) in developing three-dimensional (3D) microvascular networks. We established a CDH5-mCherry reporter iPS cell line, which expresses the vascular endothelial (VE)-cadherin fused to mCherry. The iPS-ECs demonstrate physiological functions characteristic of primary endothelial cells in a series of in vitro assays, including permeability, response to shear stress, and the expression of endothelial markers (CD31, von Willibrand factor, and endothelial nitric oxide synthase). The iPS-ECs form stable, perfusable microvessels over the course of 14 days when cultured within 3D microfluidic devices. We also demonstrate that inhibition of TGF-β signaling improves vascular network formation by the iPS-ECs. We conclude that iPS-ECs can be a source of endothelial cells in MPS providing opportunities for human disease modeling and improving the reproducibility of 3D vascular networks.
微生理系统(MPS),即“芯片器官”平台,旨在利用人体生理学的小规模体外组织模型来重现体内生理学。尽管在创建血管化组织方面已经做出了巨大努力,但大多数报告使用的原代内皮细胞阻碍了可重复性。在本研究中,我们报告了在构建三维(3D)微血管网络中使用人诱导多能干细胞衍生的内皮细胞(iPS-ECs)。我们建立了一种CDH5-mCherry报告基因iPS细胞系,其表达与mCherry融合的血管内皮(VE)-钙黏蛋白。在一系列体外试验中,iPS-ECs表现出原代内皮细胞的生理功能特征,包括通透性、对剪切应力的反应以及内皮标志物(CD31、血管性血友病因子和内皮型一氧化氮合酶)的表达。当在3D微流控装置中培养时,iPS-ECs在14天内形成稳定的、可灌注的微血管。我们还证明,抑制TGF-β信号通路可改善iPS-ECs的血管网络形成。我们得出结论,iPS-ECs可以作为MPS中内皮细胞的来源,为人类疾病建模和提高3D血管网络的可重复性提供机会。