Endogenous adenosine produced during hypoxia attenuates neutrophil accumulation: coordination by extracellular

Holger K Eltzschig1, Linda F Thompson, Jorn Karhausen

  • 1Brigham and Women's Hospital, Harvard Medical School, Thorn Building 704, 75 Francis Street, Boston, MA 02115, USA.

Blood
|August 21, 2004
PubMed

Insights

Hypoxia triggers inflammation, but adenosine, generated by CD39 and CD73 enzymes, acts as an anti-inflammatory signal. This pathway limits excessive immune cell accumulation in tissues.

Area of Science:

  • Immunology
  • Biochemistry
  • Physiology

Background:

  • Hypoxia is a known inflammatory trigger, leading to immune cell accumulation.
  • Adenosine, an anti-inflammatory molecule, increases during hypoxia.
  • The role of adenosine production in mitigating hypoxia-induced inflammation was investigated.

Purpose of the Study:

  • To investigate if adenosine production via adenine nucleotide metabolism acts as an endogenous anti-inflammatory response during hypoxia.
  • To determine the role of CD39 and CD73 enzymes in this process.

Main Methods:

  • In vitro studies using endothelial cells and polymorphonuclear leukocytes (PMNs).
  • In vivo studies using CD39 and CD73 knockout (null) animal models.
  • Analysis of PMN adhesion and adenosine generation under hypoxic conditions.

Main Results:

  • Endogenously generated adenosine, via A(2A) and A(2B) receptors, acts as an antiadhesive signal for PMNs.
  • CD39 and CD73 enzymes are crucial for converting nucleotides to adenosine during hypoxia.
  • Absence of CD39 or CD73 impaired the anti-inflammatory effect of adenosine in vivo.

Conclusions:

  • Extracellular adenosine, generated by CD39 and CD73, is a potent endogenous anti-inflammatory signal for PMNs during hypoxia.
  • The CD39/CD73-mediated adenosine production pathway is an innate mechanism to control excessive tissue inflammation.

Related Concept Videos

Regulation of Angiogenesis and Blood Supply01:24

Regulation of Angiogenesis and Blood Supply

Rapidly dividing tumors, embryos, and wounded tissues require more oxygen than usual, lowering the oxygen concentration in the blood. At low oxygen or hypoxic conditions, an oxygen-sensitive transcription factor called the hypoxia-inducible factor 1 or HIF1 is activated. HIF1 is a dimeric protein of alpha (ɑ) and beta (β) subunits.  Under optimal oxygen conditions, HIF1β is present in the nucleus while HIF1ɑ remains in the cytosol. HIF1ɑ is hydroxylated by prolyl hydroxylase and factor...
Drugs Affecting Neurotransmitter Synthesis01:29

Drugs Affecting Neurotransmitter Synthesis

Drugs affecting neurotransmitter synthesis can impact the adrenergic neuron and the synthesis of neurotransmitters. For example, α-methyltyrosine and carbidopa target specific enzymes involved in catecholamine synthesis. α-methyltyrosine inhibits the enzyme tyrosine hydroxylase, which converts tyrosine into dopamine. By blocking this enzyme, α-methyltyrosine reduces dopamine production and other catecholamines. Carbidopa, on the other hand, inhibits the enzyme dopa decarboxylase, which converts...
Adrenergic Neurons: Neurotransmission01:27

Adrenergic Neurons: Neurotransmission

Postganglionic sympathetic fibers (except those supplying the sweat glands) releasing noradrenaline or norepinephrine are called noradrenergic or adrenergic neurons. Noradrenaline, dopamine, adrenaline, or epinephrine are collectively called "catecholamines" as they contain a catechol moiety and an amine side chain. The five stages of neurotransmitter release involve their synthesis, storage, release, reuptake and metabolism.
Synthesis: Catecholamine synthesis requires tyrosine, which is taken...
Adrenergic Agonists: Indirect-Acting Agents01:25

Adrenergic Agonists: Indirect-Acting Agents

Indirect-acting adrenergic agonists potentiate the effects of endogenous catecholamines through different mechanisms without directly binding to adrenoceptors.
One mechanism involves depleting stored catecholamines by displacing them from synaptic vesicles. These agents, known as "displacers," are transported into vesicles at the expense of noradrenaline. Examples include amphetamine and tyramine, which lack a catechol moiety, resulting in prolonged action, improved oral bioavailability, and...
Biosynthesis of Nucleic Acids01:28

Biosynthesis of Nucleic Acids

Nucleic acid biosynthesis is a fundamental biochemical process that produces the purine and pyrimidine nucleotides essential for DNA and RNA synthesis. This pathway maintains a balanced nucleotide pool, preventing imbalances that could jeopardize genetic integrity and cellular function. Given the crucial role of nucleotides, their synthesis is tightly regulated to ensure proper cellular homeostasis.Purine BiosynthesisThe biosynthesis of purine nucleotides begins with ribose-5-phosphate, a...
Adrenergic Agonists: Direct-Acting Agents01:30

Adrenergic Agonists: Direct-Acting Agents

Drugs that mimic the action of endogenous catecholamines like noradrenaline and adrenaline are called adrenergic agonists or sympathomimetics. Based on their mechanism of action, sympathomimetics can be classified as direct-, indirect-, or mixed-acting sympathomimetics. Direct-acting adrenergic agonists activate adrenoceptors without affecting presynaptic neurons, making them independent of neuronal catecholamine-depleting agents like reserpine and guanethidine.
These agents can be classified...