Setup of human liver-chips integrating 3D models, microwells and a standardized microfluidic platform as proof-of-concept study to support drug evaluation

Q3 Biochemistry, Genetics and Molecular Biology Biomaterials and biosystems Pub Date : 2022-08-01 DOI:10.1016/j.bbiosy.2022.100054
Benoit Cox , Patrick Barton , Reiner Class , Hannah Coxhead , Claude Delatour , Eric Gillent , Jamie Henshall , Emre M. Isin , Lloyd King , Jean-Pierre Valentin
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引用次数: 6

Abstract

Human 3D liver microtissues/spheroids are powerful in vitro models to study drug-induced liver injury (DILI) but the small number of cells per spheroid limits the models’ usefulness to study drug metabolism. In this work, we scale up the number of spheroids on both a plate and a standardized organ-chip platform by factor 100 using a basic method which requires only limited technical expertise. We successfully generated up to 100 spheroids using polymer-coated microwells in a 96-well plate (= liver-plate) or organ-chip (= liver-chip). Liver-chips display a comparable cellular CYP3A4 activity, viability, and biomarker expression as liver spheroids for at least one week, while liver-plate cultures display an overall reduced hepatic functionality. To prove its applicability to drug discovery and development, the liver-chip was used to test selected reference compounds. The test system could discriminate toxicity of the DILI-positive compound tolcapone from its less hepatotoxic structural analogue entacapone, using biochemical and morphological readouts. Following incubation with diclofenac, the liver-chips had an increased metabolite formation compared to standard spheroid cultures. In summary, we generated a human liver-chip model using a standardized organ-chip platform which combines up to 100 spheroids and can be used for the evaluation of both drug safety and metabolism.

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建立集成3D模型、微孔和标准化微流控平台的人体肝脏芯片,作为概念验证研究,以支持药物评估
人体三维肝脏微组织/球体是研究药物性肝损伤(DILI)的有效体外模型,但每个球体的细胞数量较少限制了模型在研究药物代谢方面的有用性。在这项工作中,我们使用一种只需要有限技术专长的基本方法,将平板和标准化器官芯片平台上的球体数量增加了100倍。我们成功地在96孔板(=肝脏板)或器官芯片(=肝脏芯片)上使用聚合物包被微孔生成了多达100个球体。肝芯片在至少一周内显示出与肝球体相当的细胞CYP3A4活性、活力和生物标志物表达,而肝板培养则显示出肝脏功能的总体降低。为了证明其在药物发现和开发中的适用性,肝脏芯片被用于测试选定的参比化合物。该测试系统可以通过生化和形态学读数来区分dili阳性化合物tolcapone和其肝毒性较小的结构类似物entacapone的毒性。用双氯芬酸孵育后,与标准球形培养物相比,肝脏芯片的代谢物形成增加。总之,我们使用一个标准化的器官芯片平台生成了一个人类肝脏芯片模型,该平台包含多达100个球体,可用于药物安全性和代谢的评估。
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