谷氨酰胺
新陈代谢
生物
自行车
碳水化合物代谢
生物化学
化学
细胞生物学
内科学
内分泌学
氨基酸
医学
历史
考古
作者
Anne Le,Andrew N. Lane,Max Hamaker,Sminu Bose,Arvin M. Gouw,Joseph Barbi,Takashi Tsukamoto,Camilio J. Rojas,Barbara S. Slusher,Haixia Zhang,Lisa J. Zimmerman,Daniel C. Liebler,Robbert J.C. Slebos,Pawel Lorkiewicz,Richard M. Higashi,Teresa W.‐M. Fan,Chi V. Dang
出处
期刊:Cell Metabolism
[Cell Press]
日期:2012-01-01
卷期号:15 (1): 110-121
被引量:881
标识
DOI:10.1016/j.cmet.2011.12.009
摘要
Because MYC plays a causal role in many human cancers, including those with hypoxic and nutrient-poor tumor microenvironments, we have determined the metabolic responses of a MYC-inducible human Burkitt lymphoma model P493 cell line to aerobic and hypoxic conditions, and to glucose deprivation, using stable isotope-resolved metabolomics. Using [U-(13)C]-glucose as the tracer, both glucose consumption and lactate production were increased by MYC expression and hypoxia. Using [U-(13)C,(15)N]-glutamine as the tracer, glutamine import and metabolism through the TCA cycle persisted under hypoxia, and glutamine contributed significantly to citrate carbons. Under glucose deprivation, glutamine-derived fumarate, malate, and citrate were significantly increased. Their (13)C-labeling patterns demonstrate an alternative energy-generating glutaminolysis pathway involving a glucose-independent TCA cycle. The essential role of glutamine metabolism in cell survival and proliferation under hypoxia and glucose deficiency makes them susceptible to the glutaminase inhibitor BPTES and hence could be targeted for cancer therapy.
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