P. Sander, P. Walther, B. Moepps, Michael Hinz, H. Mostafa, Patrick M. Schaefer, A. Paľa, C. Wirtz, M. Georgieff, E. Schneider
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引用次数: 2
摘要
IV型胶质母细胞瘤(Glioblastoma IV, GBM)是成人最致命的恶性疾病之一,其特点是突变率高,具有抑制先天和获得性免疫的多重特征。我们在此研究了来自单个肿瘤分离株的新建立的GBM细胞系中自噬相关的细胞死亡。用一种名为Vacquinol-1 (Vac)的小分子治疗后,GBM细胞100%死亡,这与线粒体功能障碍、钙诱导的内质网(ER)应激和自噬有关。通过抑制瞬时受体电位阳离子通道M亚家族成员7 (TRPM7), Vac的毒性显著增加。TRPM7在GBM和许多其他肿瘤中过表达,因此可能是天然化合物carvacrol的潜在靶标。值得注意的是,在较高浓度下,Vac还会诱导非转化细胞类型的生长抑制和细胞死亡。然而,在TRPM7抑制剂carvacrol的存在下,Vac的肿瘤选择性作用大大增强。本研究的结果是基于使用IncuCyteZOOM®的长期视频显微镜,钙测量和使用冷冻材料的3D超微结构分析。
Mitophagy-Related Cell Death Mediated by Vacquinol-1 and TRPM7 Blockade in Glioblastoma IV
Glioblastoma IV (GBM) is one of the deadliest malignant diseases in adults and is characterized by a high mutation rate and multiple traits to suppress inborn and acquired immunity. We here approached autophagy-related cell death in newly established GBM cell lines derived from individual tumor isolates. Treatment with a small molecule, termed Vacquinol-1 (Vac) exhibited 100% GBM cell death, which was related to mitochondrial dysfunction, calcium-induced endoplasmic reticulum (ER)-stress, and autophagy. The toxicity of Vac was significantly increased by the inhibition of transient receptor potential cation channel, subfamily M, member 7 (TRPM7). TRPM7 is overexpressed in GBM as well as in many other tumors and thus may be a potential target by the natural compound carvacrol. Of note, at higher concentrations, Vac also induced growth inhibition and cell death in non-transformed cell types. However, in the presence of the TRPM7 inhibitor carvacrol, the tumor-selective effect of Vac was very much increased. Results given in the present study are based on long-term video microscopy using IncuCyteZOOM®, calcium measurements, and 3D ultrastructural analysis using the cryofixed material.