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Updated: Mar 25, 2026

Generation and Expansion of Human Cardiomyocytes from Patient Peripheral Blood Mononuclear Cells
Published on: February 12, 2021
In vitro expansion of human cardiac progenitor cells: exploring 'omics tools for characterization of cell-based
P Gomes-Alves1, M Serra1, C Brito1
1Instituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa, Oeiras, Portugal; iBET, Instituto de Biologia Experimental e Tecnológica, Oeiras, Portugal.
Insights
Scaling up cardiac stem cell production is crucial for regenerative therapies. A new bioprocess using microcarrier technology significantly increases human cardiac progenitor cell (hCPC) expansion threefold while maintaining cell quality and identity.
Area of Science:
- Biotechnology and Regenerative Medicine
- Stem Cell Biology
- Cardiovascular Research
Background:
- Human cardiac stem/progenitor cells (hCPCs) hold potential for myocardial regeneration.
- Current in vitro expansion methods (static monolayer cultures) are insufficient for large-scale clinical applications.
- Significant cell quantities (10^6-10^9 cells/patient) are required for cardiac regeneration therapies.
Purpose of the Study:
- To develop and validate a scalable, GMP-compatible bioprocess for high-quality hCPC expansion.
- To compare the efficacy of microcarrier-based stirred systems versus traditional static monolayer cultures.
- To assess the impact of culture conditions on hCPC quality, potency, and molecular profiles.
Main Methods:
- Implementation of microcarrier technology and stirred bioreactor systems.
- Comparative analysis of hCPCs cultured in static monolayers and stirred microcarrier systems.
- Utilized gene expression microarrays, mass spectrometry, and surface marker analysis to compare cell profiles.
Main Results:
- Stirred microcarrier-based systems achieved over a threefold increase in hCPC expansion compared to static monolayers.
- Cell phenotype, identity, and 'omics' profiles (transcriptome, proteome, secretion) remained consistent across both culture methods.
- The developed bioprocess is robust, scalable, and GMP-compatible.
Conclusions:
- Microcarrier-based stirred culture is a superior method for large-scale hCPC expansion.
- This scalable bioprocess ensures cell quality and identity are maintained.
- The findings support the translation of this production platform for clinical stem cell therapies.
Abstract:
Human cardiac stem/progenitor cells (hCPCs) have been shown to be capable to regenerate contractile myocardium. However, because of their relative low abundance in the heart, in vitro expansion of hCPC is mandatory to achieve necessary quantities for allogeneic or autologous cardiac regeneration therapy applications (10(6)-10(9) cells/patient). Up to now, cell number requirements of ongoing phase I/IIa trials have been fulfilled with production in static monolayer cultures. However, this manufacturing process poses critical limitations when moving to the following clinical phases where hundreds of patients will be enrolled. For this, increased process yield is required, while guaranteeing the quality of the cell-based products. In this work, we developed and validated a robust, scalable, and good manufacturing practice (GMP)-compatible bioprocess for the expansion of high-quality hCPC. We applied platforms extensively used by the biopharmaceutical industry, such as microcarrier technology and stirred systems, and assessed culture conditions' impact on hCPC's quality and potency, as required by regulatory agencies. Complementary analytical assays including gene expression microarrays and mass spectrometry-based approaches were explored to compare transcriptome, proteome, surface markers, and secretion profiles of hCPC cultured in static monolayers and in stirred microcarrier-based systems. Our results show that stirred microcarrier-based culture systems enabled achieving more than 3-fold increase in hCPC expansion, when compared with traditional static monolayers, while retaining cell's phenotype and similar "omics" profiles. These findings demonstrate that this change in the production process does not affect cell's identity and quality, with potential to be translated into a transversal production platform for clinical development of stem-cell therapies.
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