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Updated: Jun 13, 2025

Pluripotent Stem Cell Derived Cardiac Cells for Myocardial Repair
Published on: February 3, 2017
Decoded cardiopoietic cell secretome linkage to heart repair biosignature
Armin Garmany1,2,3,4, D Kent Arrell1,2,3, Satsuki Yamada1,2,3,5
1Department of Cardiovascular Medicine, Mayo Clinic, Rochester, MN, United States.
Insights
Cardiopoiesis enhances human stem cell secretomes, boosting heart repair signals. This paracrine effect drives molecular restitution in failing hearts, improving cardiac function after myocardial infarction.
Area of Science:
- Regenerative Medicine
- Cardiovascular Biology
- Proteomics
Background:
- Human stem cells primed with cardiopoiesis show therapeutic benefits for heart failure.
- Limited cell retention after myocardial delivery suggests paracrine mechanisms are crucial.
Purpose of the Study:
- To investigate the paracrine contribution of the secretome from cardiopoiesis-conditioned human mesenchymal stromal cells.
- To identify specific secretome components responsible for cell therapy-mediated cardiac repair.
Main Methods:
- Directed proteomics and machine learning were used to analyze the secretome of cardiopoiesis-conditioned versus naïve cells.
- A murine coronary ligation model assessed the impact of intramyocardial delivery of cardiopoietic cells on heart function and myocardial proteome.
- In silico knockout and network analysis identified key secretome-dependent myocardial ensembles.
Main Results:
- Cardiopoiesis significantly altered the secretome, increasing protein output and enriching for mesoderm development, cardiac progenitor signaling, and immunomodulatory proteins.
- Cell therapy improved cardiac performance, and proteomics revealed 50 responsive myocardial proteins, with 17 key secretome proteins upstream of 44% of these.
- Eliminating a 22-protein secretome-dependent ensemble abolished the repair signature, demonstrating its critical role in cardiac restitution.
Conclusions:
- The secretagogue effect of cardiopoiesis transforms the stem cell secretome, conferring regenerative capacity.
- Specific paracrine factors within the cardiopoietic secretome are essential effectors of cell therapy-driven molecular repair in heart failure.
- This study highlights the therapeutic potential of engineered stem cell secretomes for cardiovascular regeneration.
Abstract:
Cardiopoiesis-primed human stem cells exert sustained benefit in treating heart failure despite limited retention following myocardial delivery. To assess potential paracrine contribution, the secretome of cardiopoiesis conditioned versus naïve human mesenchymal stromal cells was decoded by directed proteomics augmented with machine learning and systems interrogation. Cardiopoiesis doubled cellular protein output generating a distinct secretome that segregated the conditioned state. Altering the expression of 1035 secreted proteins, cardiopoiesis reshaped the secretome across functional classes. The resolved differential cardiopoietic secretome was enriched in mesoderm development and cardiac progenitor signaling processes, yielding a cardiovasculogenic profile bolstered by upregulated cardiogenic proteins. In tandem, cardiopoiesis enhanced the secretion of immunomodulatory proteins associated with cytokine signaling, leukocyte migration, and chemotaxis. Network analysis integrated the differential secretome within an interactome of 1745 molecules featuring prioritized regenerative processes. Secretome contribution to the repair signature of cardiopoietic cell-treated infarcted hearts was assessed in a murine coronary ligation model. Intramyocardial delivery of cardiopoietic cells improved the performance of failing hearts, with undirected proteomics revealing 50 myocardial proteins responsive to cell therapy. Pathway analysis linked the secretome to cardiac proteome remodeling, pinpointing 17 cardiopoiesis-upregulated secretome proteins directly upstream of 44% of the cell therapy-responsive cardiac proteome. Knockout, in silico, of this 22-protein secretome-dependent myocardial ensemble eliminated indices of the repair signature. Accordingly, in vivo, cell therapy rendered the secretome-dependent myocardial proteome of an infarcted heart indiscernible from healthy counterparts. Thus, the secretagogue effect of cardiopoiesis transforms the human stem cell secretome, endows regenerative competency, and upregulates candidate paracrine effectors of cell therapy-mediated molecular restitution.
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