DFMO inhibition of neuroblastoma tumorigenesis

神经母细胞瘤 癌变 癌症研究 细胞凋亡 细胞周期 活力测定 细胞生长 细胞毒性 神经球 细胞周期检查点 生物 细胞培养 医学 体外 癌症 药理学 内科学 生物化学 内皮干细胞 遗传学 成体干细胞
作者
Divya Gandra,David H. Mulama,David M. Foureau,Kimberly Q. McKinney,Elizabeth Kim,Kaitlyn H. Smith,Jason L. Haw,Abhinav B. Nagulapally,Giselle L. Saulnier Sholler
出处
期刊:Cancer Medicine [Wiley]
卷期号:13 (9)
标识
DOI:10.1002/cam4.7207
摘要

Abstract Background Most high‐risk neuroblastoma patients who relapse succumb to disease despite the existing therapy. We recently reported increased event‐free and overall survival in neuroblastoma patients receiving difluoromethylornithine (DFMO) during maintenance therapy. The effect of DFMO on cellular processes associated with neuroblastoma tumorigenesis needs further elucidation. Previous studies have shown cytotoxicity with IC50 values >5–15 mM, these doses are physiologically unattainable in patients, prompting further mechanistic studies at therapeutic doses. Methods We characterized the effect of DFMO on cell viability, cell cycle, apoptosis, neurosphere formation, and protein expression in vitro using five established neuroblastoma cell lines (BE2C, CHLA‐90, SHSY5Y, SMS‐KCNR, and NGP) at clinically relevant doses of 0, 50, 100, 500, 1000, and 2500 μM. Limiting Dilution studies of tumor formation in murine models were performed. Statistical analysis was done using GraphPad and the level of significance set at p = 0.05. Results There was not a significant loss of cell viability or gain of apoptotic activity in the in vitro assays ( p > 0.05). DFMO treatment initiated G1 to S phase cell cycle arrest. There was a dose‐dependent decrease in frequency and size of neurospheres and a dose‐dependent increase in beta‐galactosidase activity in all cell lines. Tumor formation was decreased in xenografts both with DFMO‐pretreated cells and in mice treated with DFMO. Conclusion DFMO treatment is cytostatic at physiologically relevant doses and inhibits tumor initiation and progression in mice. This study suggests that DFMO, inhibits neuroblastoma by targeting cellular processes integral to neuroblastoma tumorigenesis at clinically relevant doses.

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