Brancato Virginia, Comunanza Valentina, Imparato Giorgia, Corà Davide, Urciuolo Francesco, Noghero Alessio, Bussolino Federico, Netti Paolo A
Interdisciplinary Research Centre on Biomaterials (CRIB), University of Naples Federico II, P.le Tecchio 80, Naples, Italy.
Department of Oncology, University of Torino, SP 142 km 3.95, 10060 Candiolo, Italy; Candiolo Cancer Institute - IRCCS, SP 142 km 3.95, 10060 Candiolo, Italy.
Acta Biomater. 2017 Feb;49:152-166. doi: 10.1016/j.actbio.2016.11.072. Epub 2016 Dec 1.
Many of the existing three-dimensional (3D) cancer models in vitro fail to represent the entire complex tumor microenvironment composed of cells and extra cellular matrix (ECM) and do not allow a reliable study of the tumoral features and progression. In this paper we reported a strategy to produce 3D in vitro microtissues of pancreatic ductal adenocarcinoma (PDAC) for studying the desmoplastic reaction activated by the stroma-cancer crosstalk. Human PDAC microtissues were obtained by co-culturing pancreatic cancer cells (PT45) and normal or cancer-associated fibroblasts within biodegradable microcarriers in a spinner flask bioreactor. Morphological and histological analyses highlighted that the presence of fibroblasts resulted in the deposition of a stromal matrix rich in collagen leading to the formation of tumor microtissues composed of a heterotypic cell population embedded in their own ECM. We analyzed the modulation of expression of ECM genes and proteins and found that when fibroblasts were co-cultured with PT45, they acquired a myofibroblast phenotype and expressed the desmoplastic reaction markers. This PDAC microtissue, closely recapitulating key PDAC microenvironment characteristics, provides a valuable tool to elucidate the complex stroma-cancer interrelationship and could be used in a future perspective as a testing platform for anticancer drugs in tissue-on-chip technology.
Tumor microenvironment is extremely complex and its organization is due to the interaction between different kind of cells and the extracellular matrix. Tissue engineering could give the answer to the increasing need of 3D culture model that better recapitulate the tumor features at cellular and extracellular level. We aimed in this work at developing a microtissue tumor model by mean of seeding together cancer cells and fibroblasts on gelatin microsphere in order to monitor the crosstalk between the two cell populations and the endogenous extracellular matrix deposition. Results are of particular interest because of the need of heterotypic cancer model that can replicate the complexity of the tumor microenvironment and could be used as drug screening platform.
许多现有的体外三维(3D)癌症模型无法呈现由细胞和细胞外基质(ECM)组成的完整复杂肿瘤微环境,也无法对肿瘤特征和进展进行可靠研究。在本文中,我们报告了一种制备胰腺导管腺癌(PDAC)体外3D微组织的策略,用于研究由基质 - 癌症相互作用激活的促纤维增生反应。通过在转瓶生物反应器中的可生物降解微载体上共同培养胰腺癌细胞(PT45)与正常或癌症相关成纤维细胞,获得了人PDAC微组织。形态学和组织学分析表明,成纤维细胞的存在导致富含胶原蛋白的基质沉积,从而形成由嵌入自身ECM中的异型细胞群体组成的肿瘤微组织。我们分析了ECM基因和蛋白质表达的调节,发现当成纤维细胞与PT45共同培养时,它们获得了肌成纤维细胞表型并表达促纤维增生反应标志物。这种紧密概括关键PDAC微环境特征的PDAC微组织,为阐明复杂的基质 - 癌症相互关系提供了有价值的工具,并有望在未来作为芯片组织技术中抗癌药物的测试平台。
肿瘤微环境极其复杂,其组织是由于不同类型细胞与细胞外基质之间的相互作用。组织工程可以满足对更好地在细胞和细胞外水平概括肿瘤特征的3D培养模型日益增长的需求。我们在这项工作中的目标是通过将癌细胞和成纤维细胞一起接种在明胶微球上来开发一种微组织肿瘤模型,以监测两个细胞群体之间的相互作用以及内源性细胞外基质的沉积。由于需要能够复制肿瘤微环境复杂性并可作为药物筛选平台的异型癌症模型,这些结果特别令人感兴趣。