Cancer Research Center, Sanford-Burnham Medical Research Institute, La Jolla, California 92037.
Cancer Research Center, Sanford-Burnham Medical Research Institute, La Jolla, California 92037.
J Biol Chem. 2011 Dec 9;286(49):42626-42634. doi: 10.1074/jbc.M111.282046. Epub 2011 Oct 13.
Metabolic rewiring is an established hallmark of cancer, but the details of this rewiring at a systems level are not well characterized. Here we acquire this insight in a melanoma cell line panel by tracking metabolic flux using isotopically labeled nutrients. Metabolic profiling and flux balance analysis were used to compare normal melanocytes to melanoma cell lines in both normoxic and hypoxic conditions. All melanoma cells exhibited the Warburg phenomenon; they used more glucose and produced more lactate than melanocytes. Other changes were observed in melanoma cells that are not described by the Warburg phenomenon. Hypoxic conditions increased fermentation of glucose to lactate in both melanocytes and melanoma cells (the Pasteur effect). However, metabolism was not strictly glycolytic, as the tricarboxylic acid (TCA) cycle was functional in all melanoma lines, even under hypoxia. Furthermore, glutamine was also a key nutrient providing a substantial anaplerotic contribution to the TCA cycle. In the WM35 melanoma line glutamine was metabolized in the "reverse" (reductive) direction in the TCA cycle, particularly under hypoxia. This reverse flux allowed the melanoma cells to synthesize fatty acids from glutamine while glucose was primarily converted to lactate. Altogether, this study, which is the first comprehensive comparative analysis of metabolism in melanoma cells, provides a foundation for targeting metabolism for therapeutic benefit in melanoma.
代谢重编程是癌症的一个既定标志,但在系统水平上,这种重编程的细节还没有很好地表征。在这里,我们通过使用同位素标记的营养物质跟踪代谢通量,在黑素瘤细胞系面板中获得了这方面的深入了解。代谢谱分析和通量平衡分析用于比较正常黑素细胞和缺氧条件下的黑素瘤细胞系。所有黑素瘤细胞都表现出瓦博格效应;它们比黑素细胞使用更多的葡萄糖并产生更多的乳酸。在黑素瘤细胞中还观察到了一些不属于瓦博格效应的其他变化。缺氧条件下,葡萄糖的发酵产率在黑素细胞和黑素瘤细胞中都增加了(巴斯德效应)。然而,代谢并不完全是糖酵解的,因为三羧酸(TCA)循环在所有黑素瘤系中都是功能性的,即使在缺氧条件下也是如此。此外,谷氨酰胺也是一种关键的营养物质,为 TCA 循环提供了大量的同化贡献。在 WM35 黑素瘤细胞系中,谷氨酰胺在 TCA 循环中以“反向”(还原)方向代谢,特别是在缺氧条件下。这种反向通量使黑素瘤细胞能够从谷氨酰胺合成脂肪酸,而葡萄糖主要转化为乳酸。总的来说,这项研究是对黑素瘤细胞代谢的首次全面比较分析,为针对黑素瘤代谢进行治疗提供了基础。