Laboratory of Metabolic Regulation and Genetics, The Rockefeller University, New York, NY, USA.
Proteomics Resource Center, The Rockefeller University, New York, NY, USA.
Nat Cell Biol. 2018 Jul;20(7):775-781. doi: 10.1038/s41556-018-0118-z. Epub 2018 Jun 25.
As oxygen is essential for many metabolic pathways, tumour hypoxia may impair cancer cell proliferation. However, the limiting metabolites for proliferation under hypoxia and in tumours are unknown. Here, we assessed proliferation of a collection of cancer cells following inhibition of the mitochondrial electron transport chain (ETC), a major metabolic pathway requiring molecular oxygen. Sensitivity to ETC inhibition varied across cell lines, and subsequent metabolomic analysis uncovered aspartate availability as a major determinant of sensitivity. Cell lines least sensitive to ETC inhibition maintain aspartate levels by importing it through an aspartate/glutamate transporter, SLC1A3. Genetic or pharmacologic modulation of SLC1A3 activity markedly altered cancer cell sensitivity to ETC inhibitors. Interestingly, aspartate levels also decrease under low oxygen, and increasing aspartate import by SLC1A3 provides a competitive advantage to cancer cells at low oxygen levels and in tumour xenografts. Finally, aspartate levels in primary human tumours negatively correlate with the expression of hypoxia markers, suggesting that tumour hypoxia is sufficient to inhibit ETC and, consequently, aspartate synthesis in vivo. Therefore, aspartate may be a limiting metabolite for tumour growth, and aspartate availability could be targeted for cancer therapy.
由于氧气是许多代谢途径所必需的,肿瘤缺氧可能会损害癌细胞的增殖。然而,在缺氧和肿瘤中限制增殖的代谢物尚不清楚。在这里,我们评估了一系列癌细胞在抑制线粒体电子传递链(ETC)后的增殖情况,ETC 是一种需要分子氧的主要代谢途径。细胞系对 ETC 抑制的敏感性存在差异,随后的代谢组学分析揭示了天冬氨酸的可用性是敏感性的主要决定因素。对 ETC 抑制最不敏感的细胞系通过天冬氨酸/谷氨酸转运蛋白 SLC1A3 来进口天冬氨酸以维持天冬氨酸水平。SLC1A3 活性的遗传或药理学调节显著改变了癌症细胞对 ETC 抑制剂的敏感性。有趣的是,天冬氨酸水平在低氧条件下也会降低,并且通过 SLC1A3 增加天冬氨酸的导入为癌细胞在低氧水平和肿瘤异种移植物中提供了竞争优势。最后,原发性人类肿瘤中的天冬氨酸水平与缺氧标志物的表达呈负相关,这表明肿瘤缺氧足以抑制体内的 ETC 并因此抑制天冬氨酸的合成。因此,天冬氨酸可能是肿瘤生长的限制代谢物,并且天冬氨酸的可用性可以作为癌症治疗的靶点。