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用于药物研发的人肝细胞微尺度培养。

Microscale culture of human liver cells for drug development.

作者信息

Khetani Salman R, Bhatia Sangeeta N

机构信息

Division of Health Sciences and Technology, Department of Electrical Engineering and Computer Science, Massachusetts Institute of Technology, 77 Massachusetts Avenue, E19-502D, Cambridge, Massachusetts 02139, USA.

出版信息

Nat Biotechnol. 2008 Jan;26(1):120-6. doi: 10.1038/nbt1361. Epub 2007 Nov 18.

Abstract

Tissue function depends on hierarchical structures extending from single cells ( approximately 10 microm) to functional subunits (100 microm-1 mm) that coordinate organ functions. Conventional cell culture disperses tissues into single cells while neglecting higher-order processes. The application of semiconductor-driven microtechnology in the biomedical arena now allows fabrication of microscale tissue subunits that may be functionally improved and have the advantages of miniaturization. Here we present a miniaturized, multiwell culture system for human liver cells with optimized microscale architecture that maintains phenotypic functions for several weeks. The need for such models is underscored by the high rate of pre-launch and post-market attrition of pharmaceuticals due to liver toxicity. We demonstrate utility through assessment of gene expression profiles, phase I/II metabolism, canalicular transport, secretion of liver-specific products and susceptibility to hepatotoxins. The combination of microtechnology and tissue engineering may enable development of integrated tissue models in the so-called 'human on a chip'.

摘要

组织功能依赖于从单细胞(约10微米)到协调器官功能的功能亚单位(100微米至1毫米)的层次结构。传统的细胞培养将组织分散成单个细胞,而忽略了更高层次的过程。半导体驱动的微技术在生物医学领域的应用现在允许制造功能上可能得到改善且具有小型化优势的微尺度组织亚单位。在此,我们展示了一种用于人类肝细胞的小型化多孔培养系统,其具有优化的微尺度结构,可在数周内维持表型功能。由于肝脏毒性导致药物上市前和上市后的高淘汰率,凸显了对此类模型的需求。我们通过评估基因表达谱、I/II期代谢、胆小管转运、肝脏特异性产物的分泌以及对肝毒素的敏感性来证明其实用性。微技术与组织工程的结合可能促成在所谓“芯片上的人体”中开发集成组织模型。

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