4.6 Article

A Universal and Robust Integrated Platform for the Scalable Production of Human Cardiomyocytes From Pluripotent Stem Cells

Journal

STEM CELLS TRANSLATIONAL MEDICINE
Volume 4, Issue 12, Pages 1482-1494

Publisher

OXFORD UNIV PRESS
DOI: 10.5966/sctm.2014-0275

Keywords

Human pluripotent stem cells; Embryonic stem; Induced pluripotent stem; Cardiomyocytes; Directed differentiation; Cell therapy; Small molecules; Bioreactor

Funding

  1. Royan Institute
  2. Iranian Council of Stem Cell Research and Technology
  3. Iran National Science Foundation
  4. National Health and Medical Research Council of Australia (NHMRC) [354400]
  5. National Heart Foundation of Australia/Heart Kid Australia [G11S5629]
  6. New South Wales Cardiovascular Research Network
  7. University International Postgraduate Scholarship from the University of New South Wales, Australia
  8. Senior Research Fellowship from the NHMRC [1019693]
  9. NHMRC Australia Fellowship [573705]

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Recent advances in the generation of cardiomyocytes (CMs) from human pluripotent stem cells (hPSCs), in conjunction with the promising outcomes from preclinical and clinical studies, have raised new hopes for cardiac cell therapy. We report the development of a scalable, robust, and integrated differentiation platform for large-scale production of hPSC-CM aggregates in a stirred suspension bioreactor as a single-unit operation. Precise modulation of the differentiation process by small molecule activation of WNT signaling, followed by inactivation of transforming growth factor-beta and WNT signaling and activation of sonic hedgehog signaling in hPSCs as size-controlled aggregates led to the generation of approximately 100% beating CM spheroids containing virtually pure (similar to 90%) CMs in 10 days. Moreover, the developed differentiation strategy was universal, as demonstrated by testing multiple hPSC lines (5 human embryonic stem cell and 4 human inducible PSC lines) without cell sorting or selection. The produced hPSC-CMs successfully expressed canonical lineage-specific markers and showed high functionality, as demonstrated by microelectrode array and electrophysiology tests. This robust and universal platform could become a valuable tool for the mass production of functional hPSC-CMs as a prerequisite for realizing their promising potential for therapeutic and industrial applications, including drug discovery and toxicity assays.

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