EA3842- CAPTuR, GEIST, Faculté de Médecine , Université de Limoges , 2 rue du Dr Marcland , 87025 Limoges Cedex , France.
Department of Medical Oncology , Limoges University Hospital , 2 rue Martin Luther King , 87042 Limoges , France.
Anal Chem. 2019 Jul 16;91(14):8948-8957. doi: 10.1021/acs.analchem.9b00913. Epub 2019 Jun 25.
Cancer stem cells (CSCs) play critical roles in cancer, making them important targets for new diagnostic and therapeutic approaches. Since CSCs are heterogeneous and not abundant in tumors, and few specific markers for these cells currently exist, new methods to isolate and characterize them are required. To address this issue, we developed a new label-free methodology to isolate, enrich, and identify CSCs from an heterogeneous tumor cell subpopulation using a cell sorting method (sedimentation field flow fractionation, SdFFF) and a biosensor as a detector. Enrichment was optimized using an original protocol and U87-MG glioblastoma cells cultured in a normal (N) or defined (D) medium (± fetal bovine serum, FBS) under normoxic (N, = 20%) or hypoxic (H, < 2%) conditions to obtain four cell populations: NN, NH, DN, and DH. After elution of CSCs via SdFFF using the hyperlayer mode (inertial elution mode for micrometer-sized species), we isolated eight subpopulations with distinct CSC contents based on phenotypical and functional properties, ranging from NN F1 with a lower CSC content to DH F3 with a higher CSC content. Reflecting biological differences, the intrinsic intracellular dielectric permittivity increased from NN to DH conditions. The largest difference in electromagnetic signature was observed between NN F1 and DH F3, in which the CSC content was lowest and highest, respectively. The results demonstrate that microwave dielectric spectroscopy can be used to reliably and efficiently distinguish stem cell characteristics. This new instrumental and methodological approach is an important innovation that allows both enrichment and detection of CSCs, opening the door to novel diagnostic and therapeutic approaches.
癌症干细胞 (CSC) 在癌症中发挥着关键作用,使其成为新的诊断和治疗方法的重要靶点。由于 CSC 具有异质性且在肿瘤中不丰富,并且目前这些细胞的特异性标志物很少,因此需要新的方法来分离和鉴定它们。为了解决这个问题,我们开发了一种新的无标记方法,使用细胞分选方法(沉降场流分离,SdFFF)和生物传感器作为检测器,从异质肿瘤细胞亚群中分离、富集和鉴定 CSC。通过优化原始方案,我们使用 U87-MG 神经胶质瘤细胞在正常(N)或定义(D)培养基中培养(±胎牛血清,FBS),在常氧(N,20%)或缺氧(H,<2%)条件下获得四种细胞群体:NN、NH、DN 和 DH,对富集进行了优化。在使用超层模式(用于微尺寸物种的惯性洗脱模式)通过 SdFFF 洗脱 CSC 后,我们根据表型和功能特性分离出了 8 个具有不同 CSC 含量的亚群,范围从 CSC 含量较低的 NN F1 到 CSC 含量较高的 DH F3。反映出生物学差异,从 NN 到 DH 条件下,细胞内固有介电常数增加。在 NN F1 和 DH F3 之间观察到电磁特征的最大差异,其中 CSC 含量最低和最高。结果表明,微波介电光谱法可用于可靠且有效地区分干细胞特性。这种新的仪器和方法学方法是一项重要的创新,可实现 CSC 的富集和检测,为新的诊断和治疗方法开辟了道路。