Nugraha Bramasta, Mohr Manuel A, Ponti Aaron, Emmert Maximilian Y, Weibel Franziska, Hoerstrup Simon P, Moll Solange, Certa Ulrich, Prunotto Marco, Pantazis Periklis
Department of Biosystems Science and Engineering (D-BSSE), Eidgenössische Technische Hochschule (ETH) Zurich, Mattenstrasse 26, 4058, Basel, Switzerland.
Roche Pharmaceutical Research and Early Development (pRED), Roche Innovation Center Basel, 4070, Basel, Switzerland.
Sci Rep. 2017 Nov 3;7(1):14490. doi: 10.1038/s41598-017-12683-y.
In pharmacological research the development of promising lead compounds requires a detailed understanding of the dynamics of disease progression. However, for many diseases, such as kidney fibrosis, gaining such understanding requires complex real-time, multi-dimensional analysis of diseased and healthy tissue. To allow for such studies with increased throughput we established a dextran hydrogel-based in vitro 3D co-culture as a disease model for kidney fibrosis aimed at the discovery of compounds modulating the epithelial/mesenchymal crosstalk. This platform mimics a simplified pathological renal microenvironment at the interface between tubular epithelial cells and surrounding quiescent fibroblasts. We combined this 3D technology with epithelial reporter cell lines expressing fluorescent biomarkers in order to visualize pathophysiological cell state changes resulting from toxin-mediated chemical injury. Epithelial cell damage onset was robustly detected by image-based monitoring, and injured epithelial spheroids induced myofibroblast differentiation of co-cultured quiescent human fibroblasts. The presented 3D co-culture system therefore provides a unique model system for screening of novel therapeutic molecules capable to interfere and modulate the dialogue between epithelial and mesenchymal cells.
在药理学研究中,开发有前景的先导化合物需要对疾病进展的动态过程有详细的了解。然而,对于许多疾病,如肾纤维化,要获得这种了解需要对患病组织和健康组织进行复杂的实时、多维度分析。为了实现更高通量的此类研究,我们建立了一种基于葡聚糖水凝胶的体外3D共培养体系,作为肾纤维化的疾病模型,旨在发现调节上皮/间充质相互作用的化合物。该平台模拟了肾小管上皮细胞与周围静止成纤维细胞之间界面处简化的病理性肾微环境。我们将这种3D技术与表达荧光生物标志物的上皮报告细胞系相结合,以可视化毒素介导的化学损伤引起的病理生理细胞状态变化。通过基于图像的监测能够可靠地检测上皮细胞损伤的起始,并且受损的上皮球体可诱导共培养的静止人成纤维细胞分化为肌成纤维细胞。因此,所呈现的3D共培养系统为筛选能够干扰和调节上皮细胞与间充质细胞之间对话的新型治疗分子提供了一个独特的模型系统。