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肿瘤血管生成微环境的三维模型,用于监测缺氧对细胞相互作用和肿瘤干细胞选择的影响。

A 3D model of tumour angiogenic microenvironment to monitor hypoxia effects on cell interactions and cancer stem cell selection.

机构信息

Centre for Molecular Biophysics, UPR 4301 CNRS Affiliated to Orléans University and INSERM, Orléans Cedex 02, France; Department of Biophysics, Faculty of Biochemistry, Biophysics and Biotechnology, Jagiellonian University, ul. Gronostajowa 7, 30387, Kraków, Poland.

Centre for Molecular Biophysics, UPR 4301 CNRS Affiliated to Orléans University and INSERM, Orléans Cedex 02, France.

出版信息

Cancer Lett. 2017 Jun 28;396:10-20. doi: 10.1016/j.canlet.2017.03.006. Epub 2017 Mar 10.

DOI:10.1016/j.canlet.2017.03.006
PMID:28288873
Abstract

Tumour microenvironment determines the fate of treatments. Reconstitution of tumour conditions is mandatory for alternative in vitro methods devoted to cancer development and the selection of therapeutic strategies. This work describes a 3D model of melanoma growth in its environment. Introducing means to mimic tumour angiogenesis, which turns on tumour progression, the model shows that melanoma tumour spheroids allow reconstitution of solid tumours with stromal cells. Angiogenesis evidenced the differential recruitment of endothelial cells (EC) from early progenitors (EEPCs) to mature ECs. Hypoxia was the key parameter that selected and stabilized melanoma cancer stem like cells (CSCs) phenotype based on aldehyde dehydrogenase expression as the best criterion. The 3D-tumour-model demonstrated the distinct reactivity of ECs toward tumour cells in terms of cellular cross-talk and humoral response. Intra-spheroid cell-to-cell membrane dye exchanges, mediated by intercellular interactions, uncovered the melanoma-to-EEPC cooperation. The resulting changes in tumour milieu were evidenced by the chemokinic composition and hypoxia-related variations in microRNA expression assessed in each cellular component of the spheroids. This method brings new tools to decipher the molecular mechanism of tumour-mediated cell recruitment and for in vitro assessment of therapeutic approaches.

摘要

肿瘤微环境决定了治疗的结果。为了开发癌症发展和治疗策略选择的替代体外方法,必须重建肿瘤条件。这项工作描述了一种在其环境中生长的黑色素瘤的 3D 模型。引入模拟肿瘤血管生成的方法可促进肿瘤进展,该模型表明黑色素瘤肿瘤球体允许间质细胞重建实体肿瘤。血管生成证明了内皮细胞(EC)从早期祖细胞(EEPCs)到成熟 EC 的差异募集。缺氧是基于乙醛脱氢酶表达作为最佳标准选择和稳定黑色素瘤癌症干细胞样细胞(CSC)表型的关键参数。3D 肿瘤模型证明了 EC 对肿瘤细胞的不同反应,表现在细胞间的相互作用和体液反应方面。通过细胞间相互作用介导的球体内部细胞间细胞膜染料交换揭示了黑色素瘤与 EEPC 之间的合作。通过评估球体中每个细胞成分的趋化因子组成和与缺氧相关的 microRNA 表达变化,证明了肿瘤微环境中的这些变化。该方法为解析肿瘤介导的细胞募集的分子机制以及体外评估治疗方法提供了新的工具。

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