基于hipsc衍生血管内皮细胞和平滑肌细胞的三维血管芯片。

Current Protocols Pub Date : 2022-10-01 DOI:10.1002/cpz1.564
Merve Bulut, Marc Vila Cuenca, Mees de Graaf, Francijna E van den Hil, Christine L Mummery, Valeria V Orlova
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引用次数: 1

摘要

血管由内皮细胞(ECs)和壁细胞组成,内皮细胞形成血管内壁,壁细胞覆盖内皮细胞,介导其稳定。内皮细胞和VSMCs之间的串扰对血管的功能和完整性至关重要。在这里,我们描述了一种生成三维(3D)工程血管芯片(VoCs)的方案,由来自人类诱导多能干细胞(hiPSCs)的血管细胞组成。我们首先描述了血管平滑肌细胞(hiPSC- vsmcs)从hiPSC稳健分化的方案,该方案在多个hiPSC系中有效。其次,我们描述了一种简单的微流体装置的制造,该装置由单个胶原蛋白管腔组成,可以作为细胞支架并使用粘性手指图案(VFP)技术支持流体流动。在通道中依次播种hipsc衍生的EC (hipsc -EC)和hiPSC-VSMCs后,VSMCs覆盖的稳定EC屏障排列在胶原管腔中。我们证明了这种3D VoC模型可以再现生理细胞间的相互作用,并且可以在生理剪切应力下使用微流控泵进行灌注。容器流明的均匀几何形状允许精确控制流动动力学。因此,我们开发了一种强大的方案来生成完全等基因的hipsc衍生的3D VoC模型,这对于研究健康或疾病状态下的血管屏障功能和生理有价值。©2022作者。当前协议由Wiley期刊有限责任公司出版。基本协议1:hipsc - vsmc的分化支持协议1:hiPSC-NCCs和hipsc - vsmc的表征支持协议2:制备冷冻保存的hipsc - vsmc和hipsc - ec用于VoC培养基本协议2:生成由hipsc - ec和hipsc - vsmc组成的3D VoC模型支持协议3:3D VoC模型的结构表征。
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Three-Dimensional Vessels-on-a-Chip Based on hiPSC-derived Vascular Endothelial and Smooth Muscle Cells.

Blood vessels are composed of endothelial cells (ECs) that form the inner vessel wall and mural cells that cover the ECs to mediate their stabilization. Crosstalk between ECs and VSMCs while the ECs undergo microfluidic flow is vital for the function and integrity of blood vessels. Here, we describe a protocol to generate three-dimensional (3D) engineered vessels-on-chip (VoCs) composed of vascular cells derived from human induced pluripotent stem cells (hiPSCs). We first describe protocols for robust differentiation of vascular smooth muscle cells (hiPSC-VSMCs) from hiPSCs that are effective across multiple hiPSC lines. Second, we describe the fabrication of a simple microfluidic device consisting of a single collagen lumen that can act as a cell scaffold and support fluid flow using the viscous finger patterning (VFP) technique. After the channel is seeded sequentially with hiPSC-derived ECs (hiPSC-ECs) and hiPSC-VSMCs, a stable EC barrier covered by VSMCs lines the collagen lumen. We demonstrate that this 3D VoC model can recapitulate physiological cell-cell interaction and can be perfused under physiological shear stress using a microfluidic pump. The uniform geometry of the vessel lumens allows precise control of flow dynamics. We have thus developed a robust protocol to generate an entirely isogenic hiPSC-derived 3D VoC model, which could be valuable for studying vessel barrier function and physiology in healthy or disease states. © 2022 The Authors. Current Protocols published by Wiley Periodicals LLC. Basic Protocol 1: Differentiation of hiPSC-VSMCs Support Protocol 1: Characterization of hiPSC-NCCs and hiPSC-VSMCs Support Protocol 2: Preparation of cryopreserved hiPSC-VSMCs and hiPSC-ECs for VoC culture Basic Protocol 2: Generation of 3D VoC model composed of hiPSC-ECs and hiPSC-VSMCs Support Protocol 3: Structural characterization of 3D VoC model.

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