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Published on: February 20, 2018
ACKR3 agonism induces heterodimerization with chemokine receptor CXCR4 and attenuates platelet function
Valerie Dicenta-Baunach1, Zoi Laspa1, David Schaale1
1Department of Cardiology and Angiology, University Hospital Tübingen, Eberhard Karls University Tübingen, Tübingen, Germany.
Insights
Platelet receptors ACKR3 and CXCR4 form heterodimers, with ACKR3 agonism inhibiting platelet activation. This suggests ACKR3 agonists may have therapeutic potential in cardiovascular diseases.
Area of Science:
- Cardiovascular Biology
- Platelet Physiology
- Receptor Signaling
Background:
- Platelet receptors CXCR4 and ACKR3 are implicated in cardiovascular diseases.
- CXCR4 activation induces platelet aggregation, while ACKR3 activation inhibits it.
- ACKR3/CXCR4 heterodimerization in nucleated cells regulates CXCL12 signaling.
Purpose of the Study:
- Investigate ACKR3/CXCR4 heterodimer formation in platelets.
- Determine the functional consequences of ACKR3/CXCR4 heterodimerization on platelet activity.
Main Methods:
- Proximity ligation assay (PLA) to detect ACKR3/CXCR4 heterodimers.
- Assessment of CXCL12-dependent platelet aggregation and ex vivo thrombus formation.
- Measurement of intracellular calcium and Akt signaling pathways.
- Analysis of cyclic adenosine monophosphate (cAMP) levels.
Main Results:
- ACKR3 agonism, not other agonists, induced ACKR3/CXCR4 heterodimer formation.
- ACKR3 agonism significantly reduced CXCL12-dependent platelet aggregation and thrombus formation.
- ACKR3 agonists suppressed CXCL12-induced increases in intracellular calcium and Akt signaling.
- ACKR3 agonists counteracted the CXCL12-dependent decrease in platelet cAMP levels.
Conclusions:
- Platelet ACKR3/CXCR4 heterodimer formation is ACKR3-dependent.
- ACKR3 agonism mitigates CXCL12/CXCR4-dependent platelet activation, potentially by modulating G protein signaling.
- ACKR3 agonists demonstrate potential therapeutic applications in cardiovascular conditions.
Background:
Platelet receptors ACKR3 and CXCR4 play a crucial role in a variety of cardiovascular diseases. Like most chemokine receptors, CXCR4 is a G protein coupled receptor that induces platelet activation. In contrast, the atypical chemokine receptor 3 (ACKR3) lacks the ability to activate heterotrimeric G proteins and its activation leads to platelet inhibition and attenuates thrombus formation. In nucleated cells, heterodimerization of ACKR3 with CXCR4 regulates CXCL12-dependent signalling. The aim of our study was to investigate the formation of ACKR3/CXCR4 heterodimers in platelets and the subsequent consequences for platelet function.
Methods And Results:
Using a proximity ligation assay (PLA, Duolink®) to screen for CXCR4/ACKR3 heterodimerization inducing compounds, we found that ACKR3 agonism but not conventional platelet agonists or endogen ligands lead to heterodimer formation. To further characterize the formation of ACKR3/CXCR4 heterodimers, we studied the CXCL12-dependent platelet activation via CXCR4. Both, CXCL12-dependent platelet aggregation and collagen-dependent ex vivo thrombus formation were significantly downregulated by ACKR3 agonism. Moreover, platelet intracellular calcium and Akt signalling were increased by CXCL12 and again suppressed by ACKR3-specific agonists. Previously, CXCL12 was shown to decrease platelet cAMP levels via CXCR4. Treatment with a specific ACKR3 agonist counteracted this CXCL12/CXCR4-dependent cAMP decrease.
Conclusion:
Our results reveal that the formation of platelet ACKR3/CXCR4 heterodimers is dependent on ACKR3 rather than CXCR4. Furthermore, ACKR3 agonism induced heterodimerization is associated with mitigating CXCL12/CXCR4-dependent platelet activation possibly by modulating CXCR4-dependent G protein signalling. Our results indicate possible ACKR3 agonist functions and reinforce the potential therapeutic applications of ACKR3 agonists.
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