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Published on: October 9, 2018
P2Y2 Nucleotide Receptor Prompts Human Cardiac Progenitor Cell Activation by Modulating Hippo Signaling
Farid G Khalafalla1, Steven Greene1, Hashim Khan1
1From the SDSU Heart Research Institute, San Diego State University, CA (F.G.K., S.G., H.K., K.I., M.M.M., R.A., M.C., J.N., B.N., M.A.S.); and Sharp Memorial Hospital, San Diego, CA (W.P.D.).
Insights
Enhancing aged cardiac progenitor cells (hCPCs) with P2Y2 receptor activation boosts their proliferation and migration for heart failure treatment. This approach leverages extracellular nucleotides to improve cell function and cardiac repair potential.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Regenerative Medicine
Background:
- Autologous stem cell therapy using human c-Kit+ cardiac progenitor cells (hCPCs) shows promise for heart failure (HF).
- Functionally compromised hCPCs from aged HF patients exhibit poor proliferation and migration, limiting myocardial repair.
- Ex vivo enhancement of hCPCs is crucial for improving therapeutic outcomes in HF patients.
Purpose of the Study:
- To enhance hCPC proliferation and migration by targeting the P2Y2 nucleotide receptor (P2Y2R).
- Investigate the role of extracellular ATP and UTP in activating P2Y2R for improved hCPC function.
- Establish P2Y2R as a target to overcome functional deficits in hCPCs for cardiac regeneration.
Main Methods:
- Isolated c-Kit+ hCPCs from HF patients undergoing left ventricular assist device implantation.
- Correlated P2 nucleotide receptor expression with hCPC growth kinetics.
- Overexpressed or stimulated P2Y2R in hCPCs to assess effects on proliferation and migration.
Main Results:
- Downregulation of P2Y2R observed in slow-growing hCPCs compared to fast growers.
- P2Y2R stimulation significantly improved hCPC proliferation and migration.
- P2Y2R-mediated effects were dependent on YAP activation, a downstream effector of the Hippo signaling pathway.
Conclusions:
- P2Y2R-mediated YAP activation enhances proliferation and migration of functionally impaired hCPCs.
- Revealed a novel link between extracellular nucleotides, Hippo signaling, and cardiac regeneration.
- Modulating purinergic signaling offers a potential strategy to improve hCPC-based therapies for HF.
Rationale:
Autologous stem cell therapy using human c-Kit+ cardiac progenitor cells (hCPCs) is a promising therapeutic approach for treatment of heart failure (HF). However, hCPCs derived from aged patients with HF with genetic predispositions and comorbidities of chronic diseases exhibit poor proliferative and migratory capabilities, which impair overall reparative potential for injured myocardium. Therefore, empowering functionally compromised hCPCs with proregenerative molecules ex vivo is crucial for improving the therapeutic outcome in patients with HF.
Objective:
To improve hCPC proliferation and migration responses that are critical for regeneration by targeting proregenerative P2Y2 nucleotide receptor (P2Y2R) activated by extracellular ATP and UTP molecules released following injury/stress.
Methods And Results:
c-Kit+ hCPCs were isolated from cardiac tissue of patients with HF undergoing left ventricular assist device implantation surgery. Correlations between P2 nucleotide receptor expression and hCPC growth kinetics revealed downregulation of select P2 receptors, including P2Y2R, in slow-growing hCPCs compared with fast growers. hCPC proliferation and migration significantly improved by overexpressing or stimulating P2Y2R. Mechanistically, P2Y2R-induced proliferation and migration were dependent on activation of YAP (yes-associated protein)-the downstream effector of Hippo signaling pathway.
Conclusions:
Proliferation and migration of functionally impaired hCPCs are enhanced by P2Y2R-mediated YAP activation, revealing a novel link between extracellular nucleotides released during injury/stress and Hippo signaling-a central regulator of cardiac regeneration. Functional correlations exist between hCPC phenotypic properties and P2 purinergic receptor expression. Lack of P2Y2R and other crucial purinergic stress detectors could compromise hCPC responsiveness to presence of extracellular stress signals. These findings set the stage for subsequent studies to assess purinergic signaling modulation as a potential strategy to improve therapeutic outcome for use of hCPCs in patients with HF.
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