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纳米结构自组装肽作为一种明确的细胞外基质,用于生物人工肝模块设备中原发性肝细胞的长期功能维持。

Nanostructured self-assembling peptides as a defined extracellular matrix for long-term functional maintenance of primary hepatocytes in a bioartificial liver modular device.

机构信息

Department of Cell Techniques and Applied Stem Cell Biology, Center for Biotechnology and Biomedicine (BBZ), University of Leipzig, Leipzig, Germany.

出版信息

Int J Nanomedicine. 2013;8:1525-39. doi: 10.2147/IJN.S33589. Epub 2013 Apr 18.

Abstract

Much effort has been directed towards the optimization of the capture of in vivo hepatocytes from their microenvironment. Some methods of capture include an ex vivo cellular model in a bioreactor based liver module, a micropatterned module, a microfluidic 3D chip, coated plates, and other innovative approaches for the functional maintenance of primary hepatocytes. However, none of the above methods meet US Food and Drug Administration (FDA) guidelines, which recommend and encourage that the duration of a toxicity assay of a drug should be a minimum of 14 days, to a maximum of 90 days for a general toxicity assay. Existing innovative reports have used undefined extracellular matrices like matrigel, rigid collagen, or serum supplementations, which are often problematic, unacceptable in preclinical and clinical applications, and can even interfere with experimental outcomes. We have overcome these challenges by using integrated nanostructured self-assembling peptides and a special combination of growth factors and cytokines to establish a proof of concept to mimic the in vivo hepatocyte microenvironment pattern in vitro for predicting the in vivo drug hepatotoxicity in a scalable bioartificial liver module. Hepatocyte functionality (albumin, urea) was measured at days 10, 30, 60, and 90 and we observed stable albumin secretion and urea function throughout the culture period. In parallel, drug metabolizing enzyme biomarkers such as ethoxyresorufin-O-deethylase, the methylthiazol tetrazolium test, and the lactate dehydrogenase test were carried out at days 10, 30, 60, and 90. We noticed excellent mitochondrial status and membrane stability at 90 days of culture. Since alpha glutathione S-transferase (GST) is highly sensitive and a specific marker of hepatocyte injury, we observed significantly low alpha GST levels on all measured days (10, 30, 60, and 90). Finally, we performed the image analysis of mitochondria-cultured hepatocytes at day 90 in different biophysical parameters using confocal microscopy. We applied an automatic algorithm-based method for 3D visualization to show the classic representation of the mitochondrial distribution in double hepatocytes. An automated morphological measurement was conducted on the mitochondrial distribution in the cultured hepatocytes. Our proof of concept of a scalable bioartificial liver modular device meets FDA guidelines and may function as an alternative model of animal experimentation for pharmacological and toxicological studies involving drug metabolism, enzyme induction, transplantation, viral hepatitis, hepatocyte regeneration, and can also be used in other existing bioreactor modules for long-term culture for up to 90 days or more.

摘要

人们已经付出了大量努力来优化从其微环境中捕获体内肝细胞的方法。一些捕获方法包括基于生物反应器的肝脏模块中的体外细胞模型、微图案模块、微流体 3D 芯片、涂层板以及用于维持原代肝细胞功能的其他创新方法。然而,上述方法均不符合美国食品和药物管理局 (FDA) 的指导原则,该原则建议并鼓励药物毒性检测的持续时间至少应为 14 天,最长不超过 90 天用于一般毒性检测。现有的创新报告使用了未定义的细胞外基质,如基质胶、刚性胶原或血清补充物,这些基质在临床前和临床应用中通常存在问题,不可接受,甚至会干扰实验结果。我们通过使用集成的纳米结构自组装肽和特殊组合的生长因子和细胞因子来克服这些挑战,建立了一个概念验证,以模拟体内肝细胞微环境模式,从而在可扩展的生物人工肝模块中预测体内药物肝毒性。在第 10、30、60 和 90 天测量了肝细胞的功能(白蛋白、尿素),我们观察到整个培养期间白蛋白分泌和尿素功能稳定。同时,在第 10、30、60 和 90 天进行了药物代谢酶生物标志物(如乙氧基Resorufin-O-脱乙基酶、甲基噻唑四唑测试和乳酸脱氢酶测试)的检测。我们注意到在培养 90 天时具有出色的线粒体状态和膜稳定性。由于α谷胱甘肽 S-转移酶 (GST) 高度敏感且是肝细胞损伤的特异性标志物,因此我们在所有测量的第 10、30、60 和 90 天均观察到明显较低的α GST 水平。最后,我们在第 90 天使用共聚焦显微镜在不同的生物物理参数下对培养的肝细胞中的线粒体进行了图像分析。我们应用了一种基于自动算法的 3D 可视化方法来显示双肝细胞中线粒体分布的经典表示。对培养的肝细胞中线粒体分布进行了自动形态测量。我们的可扩展生物人工肝模块设备概念验证符合 FDA 指南,并可作为动物实验的替代模型,用于涉及药物代谢、酶诱导、移植、病毒性肝炎、肝细胞再生的药理学和毒理学研究,也可用于其他现有的生物反应器模块中进行长达 90 天或更长时间的长期培养。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc5e/3632584/dac307e89e1f/ijn-8-1525Fig1.jpg

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