Schrom Silke, Kleinegger Florian, Anders Ines, Hebesberger Thomas, Karner Christina, Liesinger Laura, Birner-Gruenberger Ruth, Renner Wilfried, Pichler Martin, Grillari Regina, Aigelsreiter Ariane, Rinner Beate
Division of Biomedical Research, Medical University of Graz, 8036 Graz, Austria.
Diagnostic and Research Institute of Pathology, Medical University of Graz, 8036 Graz, Austria.
Cancers (Basel). 2023 Mar 14;15(6):1757. doi: 10.3390/cancers15061757.
Cholangiocarcinoma (CCA) are characterized by their desmoplastic and hypervascularized tumor microenvironment (TME), which is mainly composed of tumor cells and cancer-associated fibroblasts (CAFs). CAFs play a pivotal role in general and CCA tumor progression, angiogenesis, metastasis, and the development of treatment resistance. To our knowledge, no continuous human in vivo-like co-culture model is available for research. Therefore, we aimed to establish a new model system (called MUG CCArly) that mimics the desmoplastic microenvironment typically seen in CCA. Proteomic data comparing the new CCA tumor cell line with our co-culture tumor model (CCTM) indicated a higher gene expression correlation of the CCTM with physiological CCA characteristics. A pro-angiogenic TME that is typically observed in CCA could also be better simulated in the CCTM group. Further analysis of secreted proteins revealed CAFs to be the main source of these angiogenic factors. Our CCTM MUG CCArly represents a new, reproducible, and easy-to-handle 3D CCA model for preclinical studies focusing on CCA-stromal crosstalk, tumor angiogenesis, and invasion, as well as the immunosuppressive microenvironment and the involvement of CAFs in the way that drug resistance develops.
胆管癌(CCA)的特征在于其促结缔组织增生和高度血管化的肿瘤微环境(TME),该微环境主要由肿瘤细胞和癌症相关成纤维细胞(CAF)组成。一般而言,CAF在CCA肿瘤进展、血管生成、转移及耐药性发展中起关键作用。据我们所知,尚无用于研究的连续人源体内样共培养模型。因此,我们旨在建立一种新的模型系统(称为MUG CCArly),该系统可模拟CCA中常见的促结缔组织增生微环境。将新的CCA肿瘤细胞系与我们的共培养肿瘤模型(CCTM)进行蛋白质组学数据比较,结果表明CCTM与生理CCA特征的基因表达相关性更高。在CCTM组中,也能更好地模拟CCA中典型观察到的促血管生成TME。对分泌蛋白的进一步分析表明,CAF是这些血管生成因子的主要来源。我们的CCTM MUG CCArly代表了一种新的、可重复且易于操作地3D CCA模型,用于聚焦于CCA-基质相互作用、肿瘤血管生成和侵袭以及免疫抑制微环境以及CAF在耐药性发展过程中作用的临床前研究。