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Mitochondrial energetic and AKT status mediate metabolic effects and apoptosis of metformin in human leukemic cells

Leukemia, ISSN: 0887-6924, Vol: 27, Issue: 11, Page: 2129-2138
2013
  • 103
    Citations
  • 0
    Usage
  • 115
    Captures
  • 0
    Mentions
  • 1
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    103
  • Captures
    115
  • Social Media
    1
    • Shares, Likes & Comments
      1
      • Facebook
        1

Article Description

Previous reports demonstrate that metformin, an anti-diabetic drug, can decrease the risk of cancer and inhibit cancer cell growth. However, its mechanism in cancer cells is still unknown. Metformin significantly blocks cell cycle and inhibits cell proliferation and colony formation of leukemic cells. However, the apoptotic response to metformin varies. Furthermore, daily treatment with metformin induces apoptosis and reduces tumor growth in vivo. While metformin induces early and transient activation of AMPK, inhibition of AMPKα1/2 does not abrogate anti-proliferative or pro-apoptotic effects of metformin. Metformin decreases electron transport chain complex I activity, oxygen consumption and mitochondrial ATP synthesis, while stimulating glycolysis for ATP and lactate production, pentose phosphate pathway for purine biosynthesis, fatty acid metabolism, as well as anaplerotic and mitochondrial gene expression. Importantly, leukemic cells with high basal AKT phosphorylation, glucose consumption or glycolysis exhibit a markedly reduced induction of the Pasteur effect in response to metformin and are resistant to metformin-induced apoptosis. Accordingly, glucose starvation or treatment with deoxyglucose or an AKT inhibitor induces sensitivity to metformin. Overall, metformin elicits reprogramming of intermediary metabolism leading to inhibition of cell proliferation in all leukemic cells and apoptosis only in leukemic cells responding to metformin with AKT phosphorylation and a strong Pasteur effect. © 2013 Macmillan Publishers Limited.

Bibliographic Details

S. Scotland; E. Saland; N. Skuli; F. De Toni; H. Boutzen; Y. Martineau; T. Levade; S. Manenti; C. Récher; J. E. Sarry; E. Micklow; G. Danet-Desnoyers; M. A. Selak; M. Carroll; I. Sénégas; F. Bono; N. Alet; R. Peyraud; L. Peyriga; J. C. Portais; F. Théodoro; C. Junot; E. Dumon; C. Rocher

Springer Science and Business Media LLC

Medicine; Biochemistry, Genetics and Molecular Biology

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