Mollet Björne B, Bogaerts Iven L J, van Almen Geert C, Dankers Patricia Y W
Department of Biomedical Engineering, Laboratory of Chemical Biology, Eindhoven University of Technology, The Netherlands.
Institute for Complex Molecular Systems, Eindhoven University of Technology, The Netherlands.
J Tissue Eng Regen Med. 2017 Jun;11(6):1820-1834. doi: 10.1002/term.2080. Epub 2015 Sep 7.
Renal applications in healthcare, such as renal replacement therapies and nephrotoxicity tests, could potentially benefit from bioartificial kidney membranes with fully differentiated and functional human tubular epithelial cells. A replacement of the natural environment of these cells is required to maintain and study cell functionality cell differentiation in vitro. Our approach was based on synthetic supramolecular biomaterials to mimic the natural basement membrane (BM) on which these cells grow and a bioreactor to provide the desired organotypical culture parameters. The BM mimics were constructed from ureidopyrimidinone (UPy)-functionalized polymer and bioactive peptides by electrospinning. The resultant membranes were shown to have a hierarchical fibrous BM-like structure consisting of self-assembled nanofibres within the electrospun microfibres. Human kidney-2 (HK-2) epithelial cells were cultured on the BM mimics under organotypical conditions in a custom-built bioreactor. The bioreactor facilitated in situ monitoring and functionality testing of the cultures. Cell viability and the integrity of the epithelial cell barrier were demonstrated inside the bioreactor by microscopy and transmembrane leakage of fluorescently labelled inulin, respectively. Furthermore, HK-2 cells maintained a polarized cell layer and showed modulation of both gene expression of membrane transporter proteins and metabolic activity of brush border enzymes when subjected to a continuous flow of culture medium inside the new bioreactor for 21 days. These results demonstrated that both the culture and study of renal epithelial cells was facilitated by the bioartificial in vitro environment that is formed by synthetic supramolecular BM mimics in our custom-built bioreactor. Copyright © 2015 John Wiley & Sons, Ltd.
生物人工肾膜含有完全分化且功能正常的人肾小管上皮细胞,这可能会使医疗保健中的肾脏应用,如肾脏替代疗法和肾毒性测试受益。为了在体外维持和研究细胞功能及细胞分化,需要替代这些细胞的自然环境。我们的方法基于合成超分子生物材料来模拟这些细胞生长的天然基底膜(BM),并使用生物反应器提供所需的器官样培养参数。BM模拟物由脲嘧啶酮(UPy)功能化聚合物和生物活性肽通过静电纺丝构建而成。结果表明,所得膜具有分级纤维状BM样结构,由电纺微纤维内的自组装纳米纤维组成。人肾-2(HK-2)上皮细胞在定制生物反应器中的器官样条件下,在BM模拟物上进行培养。该生物反应器有助于对培养物进行原位监测和功能测试。分别通过显微镜观察和荧光标记菊粉的跨膜渗漏,在生物反应器内证明了细胞活力和上皮细胞屏障的完整性。此外,当在新生物反应器内连续流动培养基21天时,HK-2细胞维持极化细胞层,并显示膜转运蛋白的基因表达和刷状缘酶的代谢活性均受到调节。这些结果表明,我们定制生物反应器中由合成超分子BM模拟物形成的生物人工体外环境有助于肾上皮细胞的培养和研究。版权所有© 2015约翰威立父子有限公司。