Atherosclerosis on a Chip: A 3-Dimensional Microfluidic Model of Early Arterial Events in Human Plaques.

IF 7.4 1区 医学 Q1 HEMATOLOGY Arteriosclerosis, Thrombosis, and Vascular Biology Pub Date : 2024-09-19 DOI:10.1161/atvbaha.124.321332
Ranganath Maringanti,Christian G M van Dijk,Elana M Meijer,Maarten M Brandt,Mingzi Li,Vera P C Tiggeloven,Merle M Krebber,Ihsan Chrifi,Dirk J Duncker,Marianne C Verhaar,Caroline Cheng
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Abstract

BACKGROUND Realistic reconstruction of the in vivo human atherosclerotic environment requires the coculture of different cell types arranged in atherosclerotic vessel-like structures with exposure to flow and circulating cells, presenting challenges for disease modeling. This study aimed to develop a 3-dimensional tubular microfluidic model with quadruple coculture of human aortic smooth muscle cells, human umbilical cord vein endothelial cells, and foam cells to recreate a complex human atherosclerotic vessel in vitro to study the effects of flow and circulating immune cells. METHODS We developed a coculture protocol utilizing BFP (blue fluorescent protein)-labeled human aortic smooth muscle cells, GFP (green fluorescent protein)-labeled human umbilical cord vein endothelial cells, and THP-1 macrophage-derived, Dil-labeled oxidized LDL (low-density lipoprotein) foam cells within a fibrinogen/collagen I-based 3-dimensional ECM (extracellular matrix). Perfusion experiments were conducted for 24 hours on both atherosclerotic vessels and healthy vessels (BFP-labeled human aortic smooth muscle cells and GFP-labeled human umbilical cord vein endothelial cells without foam cells). Additionally, perfusion with circulating THP-1 monocytes was performed to observe cell extravasation and recruitment. RESULTS The resulting vessels displayed early lesion morphology, with a layered composition including an endothelium and media, and foam cells accumulating in the subendothelial space. The layered wall composition of both atherosclerotic and healthy vessels remained stable under perfusion. Circulating THP-1 monocytes demonstrated cell extravasation into the atherosclerotic vessel wall and recruitment to the foam cell core. The qPCR analysis indicated increased expression of atherosclerosis markers in the atherosclerotic vessels and adaptation of vascular smooth muscle cell migration in response to flow and the plaque microenvironment, compared with control vessels. CONCLUSIONS The human 3-dimensional atherosclerosis model demonstrated stability under perfusion and allowed for the observation of immune cell behavior, providing a valuable tool for the atherosclerosis research field.
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芯片上的动脉粥样硬化:人体斑块早期动脉事件的三维微流控模型
背景逼真地重建体内人类动脉粥样硬化环境需要不同类型的细胞共培养,这些细胞排列在动脉粥样硬化血管样结构中,暴露在流动和循环细胞中,这给疾病建模带来了挑战。本研究旨在开发一种三维管状微流控模型,将人主动脉平滑肌细胞、人脐带静脉内皮细胞和泡沫细胞进行四重共培养,在体外再现复杂的人动脉粥样硬化血管,以研究流动和循环免疫细胞的影响。方法我们开发了一种共培养方案,在基于纤维蛋白原/胶原 I 的三维 ECM(细胞外基质)中利用 BFP(蓝色荧光蛋白)标记的人主动脉平滑肌细胞、GFP(绿色荧光蛋白)标记的人脐带静脉内皮细胞和 THP-1 巨噬细胞衍生的 Dil 标记的氧化 LDL(低密度脂蛋白)泡沫细胞进行共培养。对动脉粥样硬化血管和健康血管(BFP 标记的人主动脉平滑肌细胞和不含泡沫细胞的 GFP 标记的人脐带静脉内皮细胞)进行了 24 小时灌注实验。结果血管显示出早期病变形态,其分层组成包括内皮和介质,泡沫细胞聚集在内皮下空间。动脉粥样硬化血管和健康血管的分层壁组成在灌注条件下保持稳定。循环中的 THP-1 单核细胞显示细胞外渗到动脉粥样硬化血管壁,并被招募到泡沫细胞核心。qPCR 分析表明,与对照血管相比,动脉粥样硬化血管中的动脉粥样硬化标志物表达增加,血管平滑肌细胞迁移对血流和斑块微环境做出了适应性反应。
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来源期刊
CiteScore
15.60
自引率
2.30%
发文量
337
审稿时长
2-4 weeks
期刊介绍: The journal "Arteriosclerosis, Thrombosis, and Vascular Biology" (ATVB) is a scientific publication that focuses on the fields of vascular biology, atherosclerosis, and thrombosis. It is a peer-reviewed journal that publishes original research articles, reviews, and other scholarly content related to these areas. The journal is published by the American Heart Association (AHA) and the American Stroke Association (ASA). The journal was published bi-monthly until January 1992, after which it transitioned to a monthly publication schedule. The journal is aimed at a professional audience, including academic cardiologists, vascular biologists, physiologists, pharmacologists and hematologists.
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