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Published on: January 7, 2013
PEPCK-M recoups tumor cell anabolic potential in a PKC-ζ-dependent manner
Petra Hyroššová1, Marc Aragó1, Juan Moreno-Felici1
1Department of Physiological Sciences, School of Medicine, University of Barcelona, Feixa Llarga s/n, 08907, L'Hospitalet del Llobregat, Spain.
Background:
Mitochondrial phosphoenolpyruvate carboxykinase (PEPCK-M; PCK2) is expressed in all cancer types examined and in neuroprogenitor cells. The gene is upregulated by amino acid limitation and ER-stress in an ATF4-dependent manner, and its activity modulates the PEP/Ca2+ signaling axis, providing clear arguments for a functional relationship with metabolic adaptations for cell survival. Despite its potential relevance to cancer metabolism, the mechanisms responsible for its pro-survival activity have not been completely elucidated.
Methods:
[U-13C]glutamine and [U-13C]glucose labeling of glycolytic and TCA cycle intermediates and their anabolic end-products was evaluated quantitatively using LC/MS and GC/MS in conditions of abundant glucose and glucose limitation in loss-of-function (shRNA) and gain-of-function (lentiviral constitutive overexpression) HeLa cervix carcinoma cell models. Cell viability was assessed in conjunction with various glucose concentrations and in xenografts in vivo.
Results:
PEPCK-M levels linearly correlated with [U-13C]glutamine label abundance in most glycolytic and TCA cycle intermediate pools under nutritional stress. In particular, serine, glycine, and proline metabolism, and the anabolic potential of the cell, were sensitive to PEPCK-M activity. Therefore, cell viability defects could be rescued by supplementing with an excess of those amino acids. PEPCK-M silenced or inhibited cells in the presence of abundant glucose showed limited growth secondary to TCA cycle blockade and increased ROS. In limiting glucose conditions, downregulation of PKC-ζ tumor suppressor has been shown to enhance survival. Consistently, HeLa cells also sustained a survival advantage when PKC-ζ tumor suppressor was downregulated using shRNA, but this advantage was abolished in the absence of PEPCK-M, as its inhibition restores cell growth to control levels. The relationship between these two pathways is also highlighted by the anti-correlation observed between PEPCK-M and PKC-ζ protein levels in all clones tested, suggesting co-regulation in the absence of glucose. Finally, PEPCK-M loss negatively impacted on anchorage-independent colony formation and xenograft growth in vivo.
Conclusions:
All in all, our data suggest that PEPCK-M might participate in the mechanisms to regulate proteostasis in the anabolic and stalling phases of tumor growth. We provide molecular clues into the clinical relevance of PEPCK-M as a mechanism of evasion of cancer cells in conditions of nutrient stress.
Insights
Mitochondrial phosphoenolpyruvate carboxykinase (PEPCK-M) supports cancer cell survival under nutrient stress by regulating amino acid metabolism and proteostasis. Its inhibition impairs tumor growth, suggesting PEPCK-M as a potential therapeutic target for cancer evasion.
Area of Science:
- Cancer Biology
- Metabolic Regulation
- Cellular Stress Response
Background:
- Mitochondrial phosphoenolpyruvate carboxykinase (PEPCK-M; PCK2) is present in all cancer types and neuroprogenitor cells.
- PEPCK-M is upregulated by amino acid limitation and ER-stress via ATF4, influencing PEP/Ca2+ signaling and metabolic adaptation for survival.
- Its precise role in cancer metabolism and pro-survival mechanisms requires further elucidation.
Purpose of the Study:
- To investigate the role of PEPCK-M in cancer cell metabolism and survival under nutrient stress.
- To elucidate the mechanisms by which PEPCK-M contributes to cancer cell adaptation and evasion.
- To assess the impact of PEPCK-M modulation on tumor growth in vitro and in vivo.
Main Methods:
- Quantitative analysis of [U-13C]glutamine and [U-13C]glucose labeling in glycolytic and TCA cycle intermediates using LC/MS and GC/MS.
- Assessment of cell viability under varying glucose concentrations and in vivo xenografts.
- Loss-of-function (shRNA) and gain-of-function (overexpression) studies in HeLa cervix carcinoma cells.
Main Results:
- PEPCK-M levels correlated with [U-13C]glutamine labeling in metabolic intermediates under nutritional stress, impacting serine, glycine, and proline metabolism.
- Cell viability defects due to PEPCK-M silencing were rescued by supplementing with specific amino acids.
- PEPCK-M inhibition in abundant glucose led to TCA cycle blockade, increased ROS, and limited growth; its absence abolished the survival advantage conferred by PKC-ζ downregulation.
- PEPCK-M loss impaired anchorage-independent colony formation and xenograft growth.
Conclusions:
- PEPCK-M plays a role in regulating proteostasis during tumor growth under anabolic and stalling conditions.
- PEPCK-M contributes to cancer cell evasion mechanisms in nutrient-stressed environments.
- These findings offer molecular insights into the clinical relevance of PEPCK-M in cancer therapy.
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