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致癌基因 H-RAS(Q61L)导致小鼠成纤维细胞中线粒体呼吸功能受损。

Impairment of mitochondrial respiration in mouse fibroblasts by oncogenic H-RAS(Q61L).

机构信息

Department of Medical Microbiology, Immunology and Cell Biology, Southern Illinois University School of Medicine and Simmons Cooper Cancer Institute, Springfield, IL, USA.

出版信息

Cancer Biol Ther. 2010 Jan;9(2):122-33. doi: 10.4161/cbt.9.2.10379. Epub 2010 Jan 21.

Abstract

A common metabolic change in cancer is the acquisition of glycolytic phenotypes. Increased expression of glycolytic enzymes is considered as one contributing factor. The role of mitochondrial defects in acquisition of glycolytic phenotypes has been postulated but remains controversial. Here we show that functional defects in mitochondrial respiration could be induced by oncogenic H-Ras(Q61L) transformation, even though the mitochondrial contents or mass was not reduced in the transformed cells. First, mitochondrial respiration, as measured by mitochondrial oxygen consumption, was suppressed in NIH-3T3 cells transformed with H-Ras(Q61L). Second, oligomycin or rotenone did not reduce the cellular ATP levels in the H-Ras(Q61L) transformed cells, suggesting a diminished role of mitochondrial respiration in the cellular energy metabolism. Third, inhibition of glycolysis with iodoacetic acid reduced ATP levels at a much faster rate in H-Ras(Q61L) transformed cells than in the vector control cells. The reduction of cellular ATP levels was reversed by exogenously added pyruvate in the vector control cells but not in H-Ras(Q61L) transformed cells. Finally when compared to the HRas(Q61L) transformed cells, the vector control cells had increased resistance toward glucose deprivation. The increased resistance was dependent on mitochondrial oxidative phosphorylation since rotenone or oligomycin abolished the increased survival of the vector control cells under glucose deprivation. The results also suggest an inability of the H-Ras(Q61L) transformed cells to reactivate mitochondrial respiration under glucose deprivation. Taken together, the data suggest that mitochondrial respiration can be impaired during transformation of NIH-3T3 cells by oncogeneic H-Ras(Q61L).

摘要

癌症中常见的代谢变化是获得糖酵解表型。糖酵解酶的表达增加被认为是一个促成因素。线粒体缺陷在获得糖酵解表型中的作用已被推测,但仍存在争议。在这里,我们表明,即使转化细胞中线粒体含量或质量没有减少,致癌 H-Ras(Q61L)转化也可以诱导线粒体呼吸的功能缺陷。首先,通过线粒体耗氧量测量的线粒体呼吸在 H-Ras(Q61L)转化的 NIH-3T3 细胞中受到抑制。其次,寡霉素或鱼藤酮不会降低 H-Ras(Q61L)转化细胞中的细胞 ATP 水平,这表明线粒体呼吸在细胞能量代谢中的作用减弱。第三,用碘乙酸抑制糖酵解会使 H-Ras(Q61L)转化细胞中的 ATP 水平更快地降低,而在载体对照细胞中则不然。在载体对照细胞中,外源性添加丙酮酸可逆转细胞 ATP 水平的降低,但在 H-Ras(Q61L)转化细胞中则不然。最后,与 HRas(Q61L)转化细胞相比,载体对照细胞对葡萄糖剥夺的抵抗力增强。这种增强的抵抗力依赖于线粒体氧化磷酸化,因为鱼藤酮或寡霉素消除了载体对照细胞在葡萄糖剥夺下的存活增加。该结果还表明,在葡萄糖剥夺下,H-Ras(Q61L)转化细胞无法重新激活线粒体呼吸。总之,这些数据表明,线粒体呼吸在 NIH-3T3 细胞被致癌 H-Ras(Q61L)转化时可能会受损。

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