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Scaffold-free 3D bio-printed human liver tissue stably maintains metabolic functions useful for drug discovery

机译:无支架的3D生物打印人类肝脏组织稳定地维持了对药物发现有用的代谢功能

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The liver plays a central role in metabolism. Although many studies have described in vitro liver models for drug discovery, to date, no model has been described that can stably maintain liver function. Here, we used a unique, scaffold-free 3D bio-printing technology to construct a small portion of liver tissue that could stably maintain drug, glucose, and lipid metabolism, in addition to bile acid secretion. This bio-printed normal human liver tissue maintained expression of several kinds of hepatic drug transporters and metabolic enzymes that functioned for several weeks. The bio-printed liver tissue displayed glucose production via cAMP/protein kinase A signaling, which could be suppressed with insulin. Bile acid secretion was also observed from the printed liver tissue, and it accumulated in the culture medium over time. We observed both bile duct and sinusoid-like structures in the bio-printed liver tissue, which suggested that bile acid secretion occurred via a sinusoid-hepatocyte-bile duct route. These results demonstrated that our bio-printed liver tissue was unique, because it exerted diverse liver metabolic functions for several weeks. In future, we expect our bio-printed liver tissue to be applied to developing new models that can be used to improve preclinical predictions of long-term toxicity in humans, generate novel targets for metabolic liver disease, and evaluate biliary excretion in drug development. Highlights ? We constructed a unique human mini-liver model with 3D bio-printing technology. ? Liver model maintained the drug-metabolizing functions for at least 7 weeks. ? Liver model cultured for 11 weeks could regulate glucose production by insulin. ? Liver model maintained NAFLD disease pathology for at least 3 weeks. ? Liver model cultured for at least 3 weeks could secrete bile acid in the medium.
机译:肝脏在新陈代谢中起着核心作用。尽管许多研究已经描述了用于药物发现的体外肝模型,但是迄今为止,还没有描述能够稳定维持肝功能的模型。在这里,我们使用了独特的无支架3D生物打印技术来构建一小部分肝脏组织,除了胆汁酸分泌外,还可以稳定地维持药物,葡萄糖和脂质的代谢。这种经过生物打印的正常人肝组织可维持数种功能正常运转的几种肝药物转运蛋白和代谢酶的表达。生物打印的肝脏组织显示出通过cAMP /蛋白激酶A信号传导的葡萄糖生成,该信号可以被胰岛素抑制。还从印刷的肝组织中观察到胆汁酸分泌,并且随着时间的流逝,胆汁酸积累在培养基中。我们在生物打印的肝组织中观察到胆管和正弦样结构,这表明胆汁酸的分泌是通过正弦-肝细胞-胆管途径发生的。这些结果表明,我们的生物打印的肝脏组织是独特的,因为它在数周内发挥了多种肝脏代谢功能。将来,我们希望我们的生物打印的肝脏组织将被用于开发新的模型,这些模型可用于改善对人类长期毒性的临床前预测,为代谢性肝病产生新的靶标,并评估药物开发中的胆汁排泄。强调 ?我们使用3D生物打印技术构建了独特的人类微型肝脏模型。 ?肝模型维持至少7周的药物代谢功能。 ?培养11周的肝模型可以调节胰岛素产生的葡萄糖。 ?肝模型维持NAFLD疾病病理至少3周。 ?培养至少3周的肝模型可以在培养基中分泌胆汁酸。

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