Yu Shuo, Zhang Lu, Yang Yanshen, Wang Meijuan, Liu Tingting, Ji Wenwen, Liu Yang, Lv Hao, Zhao Yang, Chen Xi, Hu Tinghua
Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi 710061, China.
Department of General Surgery, The Second Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi 710004, China.
ACS Pharmacol Transl Sci. 2024 Jan 15;7(4):1013-1022. doi: 10.1021/acsptsci.3c00304. eCollection 2024 Apr 12.
The dense storm microenvironment formed by an excessively cross-linked extracellular matrix, such as hyaluronic acid and collagens, serves as a major barrier that prevents drugs from reaching the deeper tumor. Current traditional two-dimensional (2D) cultures are not capable of modeling this drug delivery barrier in vitro. Thus, tumor spheroids have become increasingly important in cancer research due to their three-dimensional structure. Currently, various methods have been developed to construct tumor spheroids. However, there are still challenges, such as lengthy construction time, complex composition of added growth factors, and high cultivation costs. To address this technical bottleneck, our study combined the GelMA hydrogel system to develop a rapid and high-yield method for tumor spheroids generation. Additionally, we proposed an evaluation scheme to assess the effects of drugs on tumor spheroids. Building on the hyaluronic acid-rich pathological tumor microenvironment, we constructed a resveratrol-loaded nano-drug delivery system with tumor stroma modulation capability and used a three-dimensional (3D) tumor sphere model to simulate in vivo tumor conditions. This process was utilized to completely evaluate the ability of the nano-drug delivery system to enhance the deep penetration of resveratrol in the tumor microenvironment, providing new insights into future oncology drug screening, efficacy assessment, and drug delivery methods.
由过度交联的细胞外基质(如透明质酸和胶原蛋白)形成的致密风暴微环境,是阻止药物到达肿瘤深层的主要屏障。当前传统的二维(2D)培养无法在体外模拟这种药物递送屏障。因此,肿瘤球体因其三维结构在癌症研究中变得越来越重要。目前,已经开发出各种构建肿瘤球体的方法。然而,仍然存在挑战,如构建时间长、添加的生长因子成分复杂以及培养成本高。为了解决这一技术瓶颈,我们的研究结合GelMA水凝胶系统,开发了一种快速高产的肿瘤球体生成方法。此外,我们提出了一种评估方案来评估药物对肿瘤球体的影响。基于富含透明质酸的病理性肿瘤微环境,我们构建了具有肿瘤基质调节能力的载白藜芦醇纳米药物递送系统,并使用三维(3D)肿瘤球体模型模拟体内肿瘤情况。利用这一过程全面评估纳米药物递送系统增强白藜芦醇在肿瘤微环境中深度渗透的能力,为未来肿瘤学药物筛选、疗效评估和药物递送方法提供新的见解。