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一种用于对生物工程肝脏构建体进行纵向监测的灌注生物反应器。

A Perfusion Bioreactor for Longitudinal Monitoring of Bioengineered Liver Constructs.

作者信息

Sassi Lisa, Ajayi Omolola, Campinoti Sara, Natarajan Dipa, McQuitty Claire, Siena Riccardo Rayan, Mantero Sara, De Coppi Paolo, Pellegata Alessandro F, Chokshi Shilpa, Urbani Luca

机构信息

Institute of Hepatology, Foundation for Liver Research, London SE5 9NT, UK.

Faculty of Life Sciences & Medicine, King's College London, London WC2R 2LS, UK.

出版信息

Nanomaterials (Basel). 2021 Jan 21;11(2):275. doi: 10.3390/nano11020275.

Abstract

In the field of in vitro liver disease models, decellularised organ scaffolds maintain the original biomechanical and biological properties of the extracellular matrix and are established supports for in vitro cell culture. However, tissue engineering approaches based on whole organ decellularized scaffolds are hampered by the scarcity of appropriate bioreactors that provide controlled 3D culture conditions. Novel specific bioreactors are needed to support long-term culture of bioengineered constructs allowing non-invasive longitudinal monitoring. Here, we designed and validated a specific bioreactor for long-term 3D culture of whole liver constructs. Whole liver scaffolds were generated by perfusion decellularisation of rat livers. Scaffolds were seeded with Luc+HepG2 and primary human hepatocytes and cultured in static or dynamic conditions using the custom-made bioreactor. The bioreactor included a syringe pump, for continuous unidirectional flow, and a circuit built to allow non-invasive monitoring of culture parameters and media sampling. The bioreactor allowed non-invasive analysis of cell viability, distribution, and function of Luc+HepG2-bioengineered livers cultured for up to 11 days. Constructs cultured in dynamic conditions in the bioreactor showed significantly higher cell viability, measured with bioluminescence, distribution, and functionality (determined by albumin production and expression of CYP enzymes) in comparison to static culture conditions. Finally, our bioreactor supports primary human hepatocyte viability and function for up to 30 days, when seeded in the whole liver scaffolds. Overall, our novel bioreactor is capable of supporting cell survival and metabolism and is suitable for liver tissue engineering for the development of 3D liver disease models.

摘要

在体外肝脏疾病模型领域,脱细胞器官支架保留了细胞外基质的原始生物力学和生物学特性,是体外细胞培养的既定支撑物。然而,基于全器官脱细胞支架的组织工程方法受到提供可控三维培养条件的合适生物反应器稀缺的阻碍。需要新型特异性生物反应器来支持生物工程构建体的长期培养,以便进行非侵入性纵向监测。在此,我们设计并验证了一种用于全肝构建体长期三维培养的特异性生物反应器。通过大鼠肝脏的灌注脱细胞法生成全肝支架。将Luc+HepG2细胞和原代人肝细胞接种到支架上,并使用定制生物反应器在静态或动态条件下培养。该生物反应器包括一个用于连续单向流动的注射泵,以及一个用于非侵入性监测培养参数和进行培养基采样的回路。该生物反应器能够对培养长达11天的Luc+HepG2生物工程肝脏的细胞活力、分布和功能进行非侵入性分析。与静态培养条件相比,在生物反应器中动态培养的构建体在生物发光测量的细胞活力、分布和功能(由白蛋白产生和CYP酶表达确定)方面显著更高。最后,当接种到全肝支架中时,我们的生物反应器可支持原代人肝细胞的活力和功能长达30天。总体而言,我们的新型生物反应器能够支持细胞存活和代谢,适用于肝脏组织工程以开发三维肝脏疾病模型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79f2/7912543/fdab155648be/nanomaterials-11-00275-g001.jpg

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