cMyc-mediated activation of serine biosynthesis pathway is critical for cancer progression under nutrient deprivation conditions

被引:0
作者
Linchong Sun
Libing Song
Qianfen Wan
Gongwei Wu
Xinghua Li
Yinghui Wang
Jin Wang
Zhaoji Liu
Xiuying Zhong
Xiaoping He
Shengqi Shen
Xin Pan
Ailing Li
Yulan Wang
Ping Gao
Huiru Tang
Huafeng Zhang
机构
[1] CAS Key Laboratory of Innate Immunity and Chronic Disease,State Key Laboratory of Oncology in Southern China and Departments of Experimental Research
[2] Innovation Center for Cell Signaling Network,undefined
[3] School of Life Science,undefined
[4] University of Science and Technology of China,undefined
[5] Sun Yat-sen University Cancer Center,undefined
[6] CAS Key Laboratory of Magnetic Resonance in Biological Systems,undefined
[7] Wuhan Institute of Physics and Mathematics,undefined
[8] Chinese Academy of Sciences,undefined
[9] State Key Laboratory of Proteomics,undefined
[10] China National Center of Biomedical Analysis,undefined
[11] Collaborative Innovation Center for Diagnosis and Treatment of Infectious Diseases,undefined
[12] Zhejiang University,undefined
[13] State Key Laboratory of Genetic Engineering,undefined
[14] Collaborative Innovation Center for Genetics and Development,undefined
[15] Fudan University,undefined
来源
Cell Research | 2015年 / 25卷
关键词
cMyc; SSP; metabolism; PSPH; cancer;
D O I
暂无
中图分类号
学科分类号
摘要
Cancer cells are known to undergo metabolic reprogramming to sustain survival and rapid proliferation, however, it remains to be fully elucidated how oncogenic lesions coordinate the metabolic switch under various stressed conditions. Here we show that deprivation of glucose or glutamine, two major nutrition sources for cancer cells, dramatically activated serine biosynthesis pathway (SSP) that was accompanied by elevated cMyc expression. We further identified that cMyc stimulated SSP activation by transcriptionally upregulating expression of multiple SSP enzymes. Moreover, we demonstrated that SSP activation facilitated by cMyc led to elevated glutathione (GSH) production, cell cycle progression and nucleic acid synthesis, which are essential for cell survival and proliferation especially under nutrient-deprived conditions. We further uncovered that phosphoserine phosphatase (PSPH), the final rate-limiting enzyme of the SSP pathway, is critical for cMyc-driven cancer progression both in vitro and in vivo, and importantly, aberrant expression of PSPH is highly correlated with mortality in hepatocellular carcinoma (HCC) patients, suggesting a potential causal relation between this cMyc-regulated enzyme, or SSP activation in general, and cancer development. Taken together, our results reveal that aberrant expression of cMyc leads to the enhanced SSP activation, an essential part of metabolic switch, to facilitate cancer progression under nutrient-deprived conditions.
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页码:429 / 444
页数:15
相关论文
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