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Published on: July 20, 2016
Elevated ecto-5'-nucleotidase-mediated increased renal adenosine signaling via A2B adenosine receptor contributes to
Weiru Zhang1, Yujin Zhang, Wei Wang
1Departments of Biochemistry and Molecular Biology,University of Texas Medical School at Houston, TX 77030, USA.
Insights
Hypertension and kidney disease are linked by increased CD73 enzyme activity, leading to excess adenosine and endothelin-1. Targeting this pathway offers a new therapeutic approach for hypertensive chronic kidney disease.
Area of Science:
- Nephrology
- Cardiovascular Research
- Molecular Biology
Background:
- Hypertension is a leading cause of chronic kidney disease (CKD).
- The molecular mechanisms driving hypertensive CKD remain incompletely understood.
- Identifying key molecular players is crucial for therapeutic development.
Purpose of the Study:
- To elucidate the molecular factors and signaling pathways involved in hypertensive CKD.
- To identify novel therapeutic targets for mitigating disease progression.
Main Methods:
- Utilized high-throughput quantitative reverse-transcription polymerase chain reaction (RT-qPCR) profiling.
- Employed genetic and pharmacological studies in angiotensin II-infused mice models.
- Analyzed human kidney tissues from CKD and healthy individuals.
Main Results:
- Discovered significantly increased kidney expression of 5'-ectonucleotidase (CD73) in hypertensive nephropathy models.
- Demonstrated that elevated CD73 promotes adenosine production, activating A2B adenosine receptors (ADORA2B).
- Found elevated CD73 and ADORA2B in human CKD and hypertensive CKD kidneys, linking them to endothelin-1 induction via hypoxia-inducible factor-α.
Conclusions:
- Angiotensin II-induced renal CD73 drives hypertensive CKD through ADORA2B-mediated endothelin-1 production.
- Hypoxia-inducible factor-α regulates CD73 and ADORA2B expression.
- Inhibiting ADORA2B signaling presents a promising therapeutic strategy for hypertensive CKD.
Rationale:
Hypertension is the most prevalent life-threatening disease worldwide and is frequently associated with chronic kidney disease (CKD). However, the molecular basis underlying hypertensive CKD is not fully understood.
Objective:
We sought to identify specific factors and signaling pathways that contribute to hypertensive CKD and thereby exacerbate disease progression.
Methods And Results:
Using high-throughput quantitative reverse-transcription polymerase chain reaction profiling, we discovered that the expression level of 5'-ectonucleotidase (CD73), a key enzyme that produces extracellular adenosine, was significantly increased in the kidneys of angiotensin II-infused mice, an animal model of hypertensive nephropathy. Genetic and pharmacological studies in mice revealed that elevated CD73-mediated excess renal adenosine preferentially induced A2B adenosine receptor (ADORA2B) production and that enhanced kidney ADORA2B signaling contributes to angiotensin II-induced hypertension. Similarly, in humans, we found that CD73 and ADORA2B levels were significantly elevated in the kidneys of CKD patients compared with normal individuals and were further elevated in hypertensive CKD patients. These findings led us to further discover that elevated renal CD73 contributes to excess adenosine signaling via ADORA2B activation that directly stimulates endothelin-1 production in a hypoxia-inducible factor-α-dependent manner and underlies the pathogenesis of the disease. Finally, we revealed that hypoxia-inducible factor-α is an important factor responsible for angiotensin II-induced CD73 and ADORA2B expression at the transcriptional level.
Conclusions:
Overall, our studies reveal that angiotensin II-induced renal CD73 promotes the production of renal adenosine that is a prominent driver of hypertensive CKD by enhanced ADORA2B signaling-mediated endothelin-1 induction in a hypoxia-inducible factor-α-dependent manner. The inhibition of excess adenosine-mediated ADORA2B signaling represents a novel therapeutic target for the disease.
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