BioLab Research Group, Department of Chemistry and Industrial Chemistry, University of Pisa, UdR INSTM-Pisa, Via Moruzzi 13, 56124 Pisa, Italy.
Int J Mol Sci. 2022 Mar 17;23(6):3265. doi: 10.3390/ijms23063265.
Ovarian cancer (OC) grows and interacts constantly with a complex microenvironment, in which immune cells, fibroblasts, blood vessels, signal molecules and the extracellular matrix (ECM) coexist. This heterogeneous environment provides structural and biochemical support to the surrounding cells and undergoes constant and dynamic remodeling that actively promotes tumor initiation, progression, and metastasis. Despite the fact that traditional 2D cell culture systems have led to relevant medical advances in cancer research, 3D cell culture models could open new possibilities for the development of an in vitro tumor microenvironment more closely reproducing that observed in vivo. The implementation of materials science and technology into cancer research has enabled significant progress in the study of cancer progression and drug screening, through the development of polymeric scaffold-based 3D models closely recapitulating the physiopathological features of native tumor tissue. This article provides an overview of state-of-the-art in vitro tumor models with a particular focus on 3D OC cell culture in pre-clinical studies. The most representative OC models described in the literature are presented with a focus on hydrogel-based scaffolds, which guarantee soft tissue-like physical properties as well as a suitable 3D microenvironment for cell growth. Hydrogel-forming polymers of either natural or synthetic origin investigated in this context are described by highlighting their source of extraction, physical-chemical properties, and application for 3D ovarian cancer cell culture.
卵巢癌(OC)不断地与一个复杂的微环境生长和相互作用,其中免疫细胞、成纤维细胞、血管、信号分子和细胞外基质(ECM)共存。这种异质环境为周围细胞提供结构和生化支持,并经历不断的动态重塑,积极促进肿瘤的起始、进展和转移。尽管传统的 2D 细胞培养系统在癌症研究中导致了相关的医学进展,但 3D 细胞培养模型可能为开发更接近体内观察到的体外肿瘤微环境开辟新的可能性。将材料科学和技术应用于癌症研究,通过开发与天然肿瘤组织的生理病理特征紧密吻合的基于聚合物支架的 3D 模型,在癌症进展和药物筛选研究方面取得了显著进展。本文概述了最先进的体外肿瘤模型,特别关注临床前研究中的 3D OC 细胞培养。本文重点介绍了文献中描述的最具代表性的 OC 模型,这些模型侧重于基于水凝胶的支架,这些支架保证了软组织样的物理特性以及适合细胞生长的 3D 微环境。本文通过突出其提取来源、物理化学性质以及用于 3D 卵巢癌细胞培养的应用,描述了天然或合成来源的水凝胶形成聚合物。