Department of Chemistry, CICECO - Aveiro Institute of Materials, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
Department of Chemistry, CICECO - Aveiro Institute of Materials, University of Aveiro, Campus Universitário de Santiago, 3810-193 Aveiro, Portugal.
J Control Release. 2021 Mar 10;331:85-102. doi: 10.1016/j.jconrel.2020.12.054. Epub 2021 Jan 1.
Living therapeutics approaches that exploit mesenchymal stem cells (MSCs) as nanomedicine carriers are highly attractive due to MSCs native tropism toward the 3D tumor microenvironment. However, a streamlined pre-clinical evaluation of nano-in-cell anti-cancer therapies remains limited by the lack of in vitro testing platforms for screening MSCs-3D microtumor interactions. Herein we generated dense breast cancer mono and heterotypic 3D micro-spheroids for evaluating MSCs-solid tumors interactions and screen advanced nano-in-MSCs therapies. Breast cancer monotypic and heterotypic models comprising cancer cells and cancer associated fibroblasts (CAFs) were self-assembled under controlled conditions using the liquid overlay technique. The resulting microtumors exhibited high compactness, reproducible morphology and necrotic regions, similarly to native solid tumors. For evaluating tumoritropic therapies in organotypic tumor-stroma 3D models, theranostic polydopamine nanoparticles loaded with indocyanine green-doxorubicin combinations (PDA-ICG-DOX) were synthesized and administered to human bone-marrow derived MSCs (hBM-MSCs). The dual-loaded PDA nano-platforms were efficiently internalized, exhibited highly efficient NIR-light responsivity and assured MSCs viability up to 3 days. The administration of PDA-ICG-DOX nano-in-MSC tumoritropic units to microtumor models was performed in ultra-low adhesion surfaces for simulating in vitro the stem cell-tumor interactions observed in the in vivo scenario. Bioimaging analysis revealed hBM-MSCs adhesion to 3D cancer cells mass and MSCs-chemo-photothermal nanotherapeutics exhibited higher anti-tumor potential when compared to their standalone chemotherapy treated 3D tumor counterparts. Overall, the proposed methodology is suitable for evaluating MSCs-microtumors individualized interactions and enables a rapid high-throughput screening of tumoritropic therapies bioperformance.
利用间充质干细胞(MSCs)作为纳米医学载体的治疗方法具有很大的吸引力,因为 MSCs 对 3D 肿瘤微环境具有天然的趋向性。然而,由于缺乏用于筛选 MSC-3D 微肿瘤相互作用的体外测试平台,纳米细胞内抗癌疗法的简化临床前评估仍然受到限制。在此,我们生成了密集的乳腺癌单和异质 3D 微球体,用于评估 MSC 与实体瘤的相互作用,并筛选先进的纳米细胞内治疗方法。使用液体覆盖技术,在受控条件下,使乳腺癌单型和异型模型中的癌细胞和癌症相关成纤维细胞(CAFs)自组装。所得微肿瘤表现出高度的紧凑性、可重复的形态和坏死区域,与天然实体肿瘤相似。为了在器官样肿瘤-基质 3D 模型中评估肿瘤趋向性治疗方法,合成了载有吲哚菁绿-阿霉素组合的治疗性聚多巴胺纳米粒子(PDA-ICG-DOX),并将其施用于人骨髓源性间充质干细胞(hBM-MSCs)。双载 PDA 纳米平台被高效内化,表现出高效的近红外光响应性,并确保 MSC 活力长达 3 天。在超低粘附表面上对 PDA-ICG-DOX 纳米细胞内肿瘤趋向性单位进行了微肿瘤模型的给药,以模拟体内观察到的干细胞-肿瘤相互作用。生物成像分析显示 hBM-MSCs 黏附于 3D 癌细胞团,与单独化疗处理的 3D 肿瘤相比,MSC-化疗-光热纳米治疗具有更高的抗肿瘤潜力。总体而言,所提出的方法适用于评估 MSC-微肿瘤个体化相互作用,并能够快速高通量筛选肿瘤趋向性治疗方法的生物性能。