Extracellular adenosine activates AMP-dependent protein kinase (AMPK)
Author:
Aymerich Ivette1, Foufelle Fabienne2, Ferré Pascal2, Casado F. Javier1, Pastor-Anglada Marçal1
Affiliation:
1. Departament de Bioquímica i Biologia Molecular, Universitat de Barcelona, 08071 Barcelona, Spain 2. Institut Biomédical des Cordeliers, U465 INSERM, Paris, France
Abstract
Adenosine monophosphate (AMP)-activated protein kinase (AMPK) is a heterotrimeric complex that senses intracellular energy status and exerts rapid regulation on energy-demanding and -consuming metabolic pathways. Although alterations in the intracellular adenosine nucleotide pool are traditionally assumed to be the consequence of changes in energy metabolism, in this study we have addressed the question of whether extracellular adenosine contributes to AMPK regulation. In the intestinal rat epithelial cell line IEC-6, addition of adenosine rapidly increases AMP intracellular concentrations and upregulates α1AMPK, thus promoting phosphorylation of its downstream target acetyl-CoA carboxylase (ACC). The effect of adenosine on AMPK signaling is completely blocked by transducing IEC-6 cells with an adenoviral vector expressing a mutated α1 subunit, resulting in a dominant-negative effect on endogenous AMPK activity. These effects are blocked by 5′-iodotubercidine (5′-ITU), an inhibitor of adenosine kinase. Moreover, inhibition of adenosine transport through the concentrative adenosine plasma membrane transporter CNT2 with formycin B results in the blockade of adenosine-mediated AMPK signaling. Extracellular adenosine is equally able to activate AMPK and promote ACC phosphorylation in liver parenchymal cell models in a manner that is also inhibited by 5′-ITU. In summary, this study shows that adenosine, when added at physiological concentrations, activates AMPK and promotes ACC phosphorylation. Adenosine must be transported and phosphorylated to exert its action. Thus, nucleoside transporters might be novel players in the complex regulation of AMPK and energy metabolism.
Publisher
The Company of Biologists
Reference48 articles.
1. Aymerich, I., Pastor-Anglada, M. and Casado, F. J. (2004). Long term endocrine regulation of nucleoside transporters in rat intestinal epithelial cells. J. Gen. Physiol.124, 505-512. 2. Baas, A. F., Smit, L. and Clevers, H. (2004). LKB1 tumor suppressor protein: PARtaker in cell polarity. Trends Cell Biol.14, 312-319. 3. Baldwin, S. A., Beal, P. R., Yao, S. Y., King, A. E., Cass, C. E. and Young, J. D. (2004). The equilibrative nucleoside transporter family, SLC29. Pflugers Arch.447, 735-743. 4. Barnes, K., Ingram, J. C., Porras, O. H., Barros, L. F., Hudson, E. R., Fryer, L. G.,
Foufelle, F., Carling, D., Hardie, D. G. and Baldwin, S. A. (2002). Activation of GLUT1 by metabolic and osmotic stress: potential involvement of AMP-activated protein kinase (AMPK). J. Cell Sci.115, 2433-2442. 5. Carabaza, A., Ricart, M. D., Mor, A., Guinovart, J. J. and Ciudad, C. J. (1990). Role of AMP on the activation of glycogen synthase and phosphorylase by adenosine, fructose, and glutamine in rat hepatocytes. J. Biol. Chem.265, 2724-2732.
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