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Published on: November 5, 2019
Adenosine signaling in normal and sickle erythrocytes and beyond
1Biochemistry and Molecular Biology Department, University of Texas-Houston Medical School, Houston, TX 77030, USA.
Insights
Adenosine signaling, elevated in sickle cell disease (SCD), paradoxically benefits normal red blood cells but promotes sickling and complications in SCD. Targeting adenosine pathways offers new therapeutic strategies for SCD.
Area of Science:
- Biochemistry
- Genetics
- Hematology
Background:
- Sickle cell disease (SCD) is a severe genetic blood disorder with significant mortality.
- Lack of effective treatments stems from an incomplete understanding of sickling's molecular basis.
- Hypoxia induces adenosine, a signaling molecule with complex roles in red blood cells.
Purpose of the Study:
- To review the multifaceted role of adenosine signaling in normal and sickle erythrocytes.
- To explore adenosine's impact on SCD progression and complications.
- To discuss therapeutic implications of targeting adenosine pathways in SCD.
Main Methods:
- Review of genetic and pharmacological studies on adenosine signaling.
- Analysis of adenosine's effects on 2,3-bisphosphoglycerate (2,3-BPG) production.
- Examination of adenosine receptor (ADORA2A, ADORA2B) roles in SCD pathophysiology.
Main Results:
- Adenosine enhances 2,3-BPG in normal erythrocytes, aiding oxygen release.
- In sickle erythrocytes, adenosine promotes sickling by increasing 2,3-BPG and hemoglobin polymerization.
- Adenosine signaling impacts iNKT cells, pulmonary dysfunction, and priapism in SCD.
Conclusions:
- Adenosine signaling exhibits distinct roles in normal versus sickle erythrocytes.
- Adenosine pathways are implicated in SCD pathogenesis and complications like priapism.
- Targeting adenosine signaling presents a promising therapeutic avenue for SCD treatment and prevention.
Abstract:
Sickle cell disease (SCD) is a debilitating hemolytic genetic disorder with high morbidity and mortality affecting millions of individuals worldwide. Although SCD was discovered more than a century ago, no effective mechanism-based prevention and treatment are available due to poorly understood molecular basis of sickling, the fundamental pathogenic process of the disease. SCD patients constantly face hypoxia. One of the best-known signaling molecules to be induced under hypoxic conditions is adenosine. Recent studies demonstrate that hypoxia-mediated elevated adenosine signaling plays an important role in normal erythrocyte physiology. In contrast, elevated adenosine signaling contributes to sickling and multiple life threatening complications including tissue damage, pulmonary dysfunction and priapism. Here, we summarize recent research on the role of adenosine signaling in normal and sickle erythrocytes, progression of the disease and therapeutic implications. In normal erythrocytes, both genetic and pharmacological studies demonstrate that adenosine can enhance 2,3-bisphosphoglycerate (2,3-BPG) production via A(2B) receptor (ADORA2B) activation, suggesting that elevated adenosine has an unrecognized role in normal erythrocytes to promote O(2) release and prevent acute ischemic tissue injury. However, in sickle erythrocytes, the beneficial role of excessive adenosine-mediated 2,3-BPG induction becomes detrimental by promoting deoxygenation, polymerization of sickle hemoglobin and subsequent sickling. Additionally, adenosine signaling via the A(2A) receptor (ADORA2A) on invariant natural killer T (iNKT) cells inhibits iNKT cell activation and attenuates pulmonary dysfunction in SCD mice. Finally, elevated adenosine coupled with ADORA2BR activation is responsible for priapism, a dangerous complication seen in SCD. Overall, the research reviewed here reveals a differential role of elevated adenosine in normal erythrocytes, sickle erythrocytes, iNK cells and progression of disease. Thus, adenosine signaling represents a potentially important therapeutic target for the treatment and prevention of disease.
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