Cordeiro Sandra, Oliveira Beatriz B, Valente Ruben, Ferreira Daniela, Luz André, Baptista Pedro V, Fernandes Alexandra R
UCIBIO, Departamento de Ciências da Vida, Faculdade de Ciências e Tecnologia, Universidade NOVA de Lisboa, Caparica, Portugal.
i4HB, Associate Laboratory - Institute for Health and Bioeconomy, Faculdade de Ciências e Tecnologia, Universidade NOVA de Lisboa, Caparica, Portugal.
Front Cell Dev Biol. 2024 Nov 26;12:1507388. doi: 10.3389/fcell.2024.1507388. eCollection 2024.
Despite extensive efforts to unravel tumor behavior and develop anticancer therapies, most treatments fail when advanced to clinical trials. The main challenge in cancer research has been the absence of predictive cancer models, accurately mimicking the tumoral processes and response to treatments. The tumor microenvironment (TME) shows several human-specific physical and chemical properties, which cannot be fully recapitulated by the conventional 2D cell cultures or the animal models. These limitations have driven the development of novel cancer models, that get one step closer to the typical features of systems while showing better species relevance. This review introduces the main considerations required for developing and exploiting tumor spheroids and organoids as cancer models. We also detailed their applications in drug screening and personalized medicine. Further, we show the transition of these models into novel microfluidic platforms, for improved control over physiological parameters and high-throughput screening. 3D culture models have provided key insights into tumor biology, more closely resembling the TME and tumor characteristics, while enabling the development of more reliable and precise anticancer therapies.
尽管人们为揭示肿瘤行为和开发抗癌疗法付出了巨大努力,但大多数治疗方法在进入临床试验时仍告失败。癌症研究的主要挑战在于缺乏能够准确模拟肿瘤过程和对治疗反应的预测性癌症模型。肿瘤微环境(TME)具有一些人类特有的物理和化学特性,传统的二维细胞培养或动物模型无法完全重现这些特性。这些局限性推动了新型癌症模型的发展,这些模型在更接近系统典型特征的同时,显示出更好的物种相关性。本文综述介绍了开发和利用肿瘤球状体和类器官作为癌症模型所需的主要考虑因素。我们还详细阐述了它们在药物筛选和个性化医学中的应用。此外,我们展示了这些模型向新型微流控平台的转变,以改善对生理参数的控制和高通量筛选。三维培养模型为肿瘤生物学提供了关键见解,更类似于肿瘤微环境和肿瘤特征,同时能够开发更可靠、精确的抗癌疗法。