Golinelli Giulia, Talami Rebecca, Frabetti Stella, Candini Olivia, Grisendi Giulia, Spano Carlotta, Chiavelli Chiara, Arnaud Gaëlle F, Mari Giorgio, Dominici Massimo
Division of Oncology, Department of Medical and Surgical Sciences for Children and Adults, University-Hospital of Modena and Reggio Emilia, Modena, Italy.
Rigenerand Srl, Medolla, Modena, Italy.
Front Cell Dev Biol. 2022 Jan 17;9:767253. doi: 10.3389/fcell.2021.767253. eCollection 2021.
We here investigated the dynamic cell-to-cell interactions between tumor and mesenchymal stromal/stem cells (MSCs) by the novel VITVO 3D bioreactor that was customized to develop -like metastatic nodules of Ewing's sarcoma (ES). MSCs are known to contribute to tumor microenvironment as cancer associated fibroblast (CAF) precursors and, for this reason, they have also been used as anti-cancer tools. Using dynamic conditions, the process of tissue colonization and formation of metastatic niches was recreated through tumor cell migration aiming to mimic ES development in patients. ES is an aggressive tumor representing the second most common malignant bone cancer in children and young adults. An urgent and unmet need exists for the development of novel treatment strategies to improve the outcomes of metastatic ES. The tumor-tropic ability of MSCs offers an alternative approach, in which these cells can be used as vehicles for the delivery of antitumor molecules, such as the proapoptotic TNF-related apoptosis inducing ligand (TRAIL). However, the therapeutic targeting of metastases remains challenging and the interaction occurring between tumor cells and MSCs has not yet been deeply investigated. Setting up and models to study this interaction is a prerequisite for novel approaches where MSCs affinity for tumor is optimized to ultimately increase their therapeutic efficacy. Here, VITVO integrating a customized scaffold with an increased inter-fiber distance (VITVO50) was used to develop a dynamic model where MSCs and tumor nodules were evaluated under flow conditions. Colonization and interaction between cell populations were explored by droplet digital PCR (ddPCR). VITVO50 findings were then applied . An ES metastatic model was established in NSG mice and biodistribution of TRAIL-expressing MSCs in mice organs affected by metastases was investigated using a 4-plex ddPCR assay. VITVO proved to be an easy handling and versatile bioreactor to develop -like tumor nodules and investigate dynamic cell-to-cell interactions with MSCs. The proposed fluidic system promises to facilitate the understanding of tumor-stroma interaction for the development of novel tumor targeting strategies, simplifying the analysis of data, and ultimately accelerating the progress towards the early clinical phase.
我们在此通过新型VITVO 3D生物反应器研究肿瘤与间充质基质/干细胞(MSC)之间的动态细胞间相互作用,该生物反应器经过定制,用于培养类似尤因肉瘤(ES)转移结节。已知MSC作为癌症相关成纤维细胞(CAF)前体有助于肿瘤微环境的形成,因此,它们也被用作抗癌工具。利用动态条件,通过肿瘤细胞迁移重现组织定植和转移微环境形成的过程,旨在模拟患者体内ES的发展。ES是一种侵袭性肿瘤,是儿童和年轻成人中第二常见的恶性骨癌。迫切需要开发新的治疗策略以改善转移性ES的治疗效果。MSC的肿瘤趋向性提供了一种替代方法,其中这些细胞可作为递送抗肿瘤分子(如促凋亡的肿瘤坏死因子相关凋亡诱导配体(TRAIL))的载体。然而,转移灶的治疗靶向仍然具有挑战性,肿瘤细胞与MSC之间发生的相互作用尚未得到深入研究。建立研究这种相互作用的模型是新方法的先决条件,在新方法中,优化MSC对肿瘤的亲和力以最终提高其治疗效果。在此,将具有增加纤维间距的定制支架(VITVO50)整合到VITVO中,用于建立一个动态模型,在流动条件下评估MSC和肿瘤结节。通过液滴数字PCR(ddPCR)探索细胞群体之间的定植和相互作用。然后应用VITVO50的研究结果。在NSG小鼠中建立ES转移模型,并使用四重ddPCR分析研究表达TRAIL的MSC在受转移影响的小鼠器官中的生物分布。VITVO被证明是一种易于操作且通用的生物反应器,可用于培养类似肿瘤结节并研究与MSC的动态细胞间相互作用。所提出的流体系统有望促进对肿瘤-基质相互作用的理解,以开发新的肿瘤靶向策略,简化数据分析,并最终加速向早期临床阶段的进展。