Shah Shrey, D'Souza Gerard G M
Department of Pharmaceutical Sciences, Massachusetts College of Pharmacy and Health Sciences, Boston, MA 02115, USA.
Atom Bioworks Inc., Cary, NC 27513, USA.
Cells. 2025 May 17;14(10):732. doi: 10.3390/cells14100732.
Drug delivery to solid tumors is challenged by multiple physiological barriers arising from the tumor microenvironment, including dense extracellular matrix, cellular heterogeneity, hypoxic gradients, and elevated interstitial fluid pressure. These features hinder the uniform distribution and accumulation of therapeutics, reducing treatment efficacy. Despite their widespread use, conventional two-dimensional monolayer cultures fail to reproduce these complexities, contributing to the poor translational predictability of many preclinical candidates. Three-dimensional multicellular tumor spheroids have emerged as more representative in vitro models that capture essential features of tumor architecture, stromal interactions, and microenvironmental resistance mechanisms. Spheroids exhibit spatially organized regions of proliferation, quiescence, and hypoxia, and can incorporate non-tumor cells to mimic tumor-stroma crosstalk. Advances in spheroid analysis now enable detailed evaluation of drug penetration, cellular migration, cytotoxic response, and molecular gradients using techniques such as optical and confocal imaging, large-particle flow cytometry, biochemical viability assays, and microfluidic integration. By combining physiological relevance with analytical accessibility, spheroid models support mechanistic studies of drug transport and efficacy under tumor-like conditions. Their adoption into routine preclinical workflows has the potential to improve translational accuracy while reducing reliance on animal models.
向实体瘤给药面临着肿瘤微环境产生的多种生理屏障的挑战,这些屏障包括致密的细胞外基质、细胞异质性、缺氧梯度和升高的间质液压力。这些特征阻碍了治疗药物的均匀分布和积累,降低了治疗效果。尽管传统的二维单层培养被广泛使用,但它们无法重现这些复杂性,导致许多临床前候选药物的翻译预测性较差。三维多细胞肿瘤球体已成为更具代表性的体外模型,能够捕捉肿瘤结构、基质相互作用和微环境抗性机制的基本特征。球体表现出增殖、静止和缺氧的空间组织区域,并且可以纳入非肿瘤细胞以模拟肿瘤-基质相互作用。球体分析的进展现在能够使用光学和共聚焦成像、大颗粒流式细胞术、生化活力测定和微流体整合等技术详细评估药物渗透、细胞迁移、细胞毒性反应和分子梯度。通过将生理相关性与分析可及性相结合,球体模型支持在类肿瘤条件下对药物转运和疗效进行机制研究。将它们应用于常规临床前工作流程有可能提高翻译准确性,同时减少对动物模型的依赖。