Rodrigues João, Sarmento Bruno, Pereira Catarina Leite
Instituto de Investigação E Inovação Em Saúde (i3S), University of Porto, Rua Alfredo Allen, 208, 4200-135 Porto, Portugal.
Instituto de Engenharia Biomédica (INEB), University of Porto, Rua Alfredo Allen, 208, 4200-135 Porto, Portugal.
In Vitro Model. 2022 Jan 18;1(1):5-27. doi: 10.1007/s44164-022-00008-x. eCollection 2022 Feb.
Osteosarcoma (OS) is the most common primary bone cancer in children and young adults. This type of cancer is characterized by a high mortality rate, especially for patients with resistant lung metastases. Given its low incidence, high genetic heterogeneity, the lack of effective targets, and poor availability of relevant in vitro and in vivo models to study the tumor progression and the metastatic cascade, the pathophysiology of OS is still poorly understood and the translation of novel drugs into the market has become stagnant. Due to the importance of the tumor microenvironment (TME) in the development of metastases and the growing interest in targeting TME-specific pathways for novel therapeutics in cancer, models that closely represent these interactions are crucial for a better understanding of cancer-related events. In OS research, most studies rely on oversimplified two-dimensional (2D) assays and complex animal models that do not faithfully recapitulate OS development and progression. In turn, three-dimensional (3D) models are able to mimic not only the physical 3D environment in which cancer cells grow but also involve interactions with the TME, including its extracellular matrix, and thus are promising tools for drug screening studies. In this review, the existing and innovative OS in vitro 3D models are highlighted, focusing on how the TME is crucial to develop effective platforms for OS tumor and metastasis modeling in a physiologically relevant context.
骨肉瘤(OS)是儿童和年轻人中最常见的原发性骨癌。这种类型的癌症具有高死亡率的特点,尤其是对于伴有耐药性肺转移的患者。鉴于其发病率低、基因异质性高、缺乏有效靶点以及用于研究肿瘤进展和转移级联反应的相关体外和体内模型的可用性差,骨肉瘤的病理生理学仍未得到充分理解,新型药物推向市场的进程也陷入了停滞。由于肿瘤微环境(TME)在转移发展中的重要性以及对针对癌症新型治疗方法的TME特异性途径的兴趣日益增加,能够紧密代表这些相互作用的模型对于更好地理解癌症相关事件至关重要。在骨肉瘤研究中,大多数研究依赖于过于简化的二维(2D)分析和复杂的动物模型,这些模型无法如实地再现骨肉瘤的发生和发展。相反,三维(3D)模型不仅能够模拟癌细胞生长的物理三维环境,还能涉及与TME的相互作用,包括其细胞外基质,因此是药物筛选研究的有前途的工具。在这篇综述中,重点介绍了现有的和创新的骨肉瘤体外3D模型,着重探讨了TME在生理相关背景下为骨肉瘤肿瘤和转移建模开发有效平台方面的关键作用。