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PMID: 11373280 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S. Research Support, U.S. Gov't, P.H.S.

Regulation of energy metabolism in macrophages during hypoxia. Roles of fructose 2,6-bisphosphate and ribose 1,5-bisphosphate.

The Journal of biological chemistry ·Vol. 276 ·No. 30 ·2001-07-27 ·Pages 28554-61

Kawaguchi T, Veech RL, Uyeda K

Abstract

Macrophages can adapt to the absence of oxygen by switching to anaerobic glycolysis. In this study, we investigated (a) the roles of fructose 2,6-bisphosphate (Fru-2,6-P2) and ribose 1,5-bisphosphate (Rib-1,5-P2), potent activators of phosphofructokinase, (b) the enzymes responsible for the synthesis of Rib-1,5-P2, and (c) the mechanisms of regulation of these enzymes in H36.12j macrophages during the initial phase of hypoxia. Within 1 min after initiating hypoxia, glycolysis was activated through activation of phosphofructokinase. Over the same period, Fru-2,6-P2 decreased 50% and recovered completely upon reoxygenation. Similar changes in cAMP levels were observed. In contrast, the Rib-1,5-P2 concentration rapidly increased to a maximum level of 8.0 +/- 0.9 nmol/g cell 30 s after hypoxia. Thus, Rib-1,5-P2 was the major factor increasing the rate of glycolysis during the initial phase of hypoxia. Moreover, we found that Rib-1,5-P2 was synthesized by two steps: the ribose-phosphate pyrophosphokinase (5-phosphoribosyl-1-pyrophosphate synthetase; PRPP synthetase) reaction (EC ) catalyzing the reaction, Rib-5-P + ATP --> PRPP + AMP and a new enzyme, "PRPP pyrophosphatase" catalyzing the reaction, PRPP --> Rib-1,5-P2 + P(i). Both PRPP synthetase and PRPP pyrophosphatase were significantly activated 30 s after hypoxia. Pretreatment with 1-octadecyl-2-methyl-rac-glycero-3-phosphocholine and calphostin C prevented the activation of ribose PRPP synthetase and PRPP pyrophosphatase as well as increase in Rib-1,5-P2 and activation of phosphofructokinase 30 s after hypoxia. These data suggest that the activation of the above enzymes was mediated by protein kinase C acting via activation of phosphatidylinositol specific phospholipase C in the macrophages during hypoxia.

MeSH Terms
Adenosine Monophosphate/metabolism Adenosine Triphosphate/metabolism Animals Cell Line Cyclic AMP/metabolism Enzyme Activation Enzyme Inhibitors/pharmacology Fructosediphosphates/metabolism Hot Temperature Hypoxia Kinetics Macrophages/metabolism Mice Models, Biological Naphthalenes/pharmacology Oxygen/metabolism Pentosephosphates/physiology Phospholipid Ethers/pharmacology Protein Kinase C/metabolism Ribose-Phosphate Pyrophosphokinase/metabolism Temperature Time Factors
Chemicals
Enzyme Inhibitors Fructosediphosphates Naphthalenes Pentosephosphates Phospholipid Ethers ribose-1,5-bisphosphate edelfosine Adenosine Monophosphate fructose 2,6-diphosphate Adenosine Triphosphate Cyclic AMP Protein Kinase C Ribose-Phosphate Pyrophosphokinase calphostin C Oxygen
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Kawaguchi T
Department of Biochemistry, Dallas Veterans Affairs Medical Center, Dallas, Texas 75216, USA.
Veech R L
Uyeda K
Article Info
Journal
The Journal of biological chemistry
Abbr.
J Biol Chem
ISSN
0021-9258
Published
2001-07-27
Epub
2001-00-23
Pages
28554-61
Language
English
Region
United States
NLM ID
2985121R
Subset
IM
Grants
NIDDK NIH HHS · DK16194 · United States
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