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December 10, 2009Stem Cells and Development172 citations

Non-Cardiomyocytes Influence the Electrophysiological Maturation of Human Embryonic Stem Cell-Derived Cardiomyocytes During Differentiation

CKChangsung KimMMMaryam MajdiPXPeng Xia

Key Result

Adding non-cardiomyocytes back to early-isolated human embryonic stem cell-derived cardiomyocytes rescued the arrest of electrophysiological maturation, indicating that non-cardiomyocytes drive electrical maturation.

Key Points

  • This research aims to explore how non-cardiomyocytes affect the electrophysiological maturation of human embryonic stem cell-derived cardiomyocytes during differentiation.
  • Isolated pure populations of hESC-CMs from embryoid bodies using lentivirus-engineered Puromycin resistance.
  • Utilized pharmacological agents, calcium imaging, and intracellular recording for analysis.
  • Investigated interactions between hESC-CMs and non-cardiomyocytes during various differentiation stages.
  • Intracellular Ca(2+)-cycling mechanisms developed early and were crucial for automaticity.
  • Ion channel development was delayed and significantly contributed to electrophysiological properties later in differentiation.
  • The addition of non-cardiomyocytes rescued the maturation of electrophysiological functions in early-isolated hESC-CMs.

Structured PICO

Does co-culture with non-cardiomyocytes improve electrophysiological maturation in human embryonic stem cell-derived cardiomyocytes?

P
Population
Human embryonic stem cell-derived cardiomyocytes (hESC-CMs) isolated from embryoid bodies (EBs)
I
Intervention
Co-culture with non-cardiomyocytes (adding back non-cardiomyocytes to early-isolated hESC-CMs)
C
Comparator
Early-isolated hESC-CMs maintained in culture without further interaction with non-cardiomyocytes
O
Outcome
Electrophysiological maturation (development of sarcolemmal ion channels and automaticity)surrogate

Non-cardiomyocytes in embryoid bodies provide essential extrinsic signals that drive the electrophysiological maturation of early human embryonic stem cell-derived cardiomyocytes.

Limitations

  • Inability to isolate specific pacemaker cells at early stages of differentiation
  • Heterogeneous and variable electrophysiological properties of hESC-CMs

Abstract

Various types of cardiomyocytes undergo changes in automaticity and electrical properties during fetal heart development. Human embryonic stem cell-derived cardiomyocytes (hESC-CMs), like fetal cardiomyocytes, are electrophysiologically immature and exhibit automaticity. We used hESC-CMs to investigate developmental changes in mechanisms of automaticity and to determine whether electrophysiological maturation is driven by an intrinsic developmental clock and/or is regulated by interactions with non-cardiomyocytes in embryoid bodies (EBs). We isolated pure populations of hESC-CMs from EBs by lentivirus-engineered Puromycin resistance at various stages of differentiation. Using pharmacological agents, calcium (Ca(2+)) imaging, and intracellular recording techniques, we found that intracellular Ca(2+)-cycling mechanisms developed early and contributed to dominant automaticity throughout hESC-CM differentiation. Sarcolemmal ion channels evolved later upon further differentiation within EBs and played an increasing role in controlling automaticity and electrophysiological properties of hESC-CMs. In contrast to the development of intracellular Ca(2+)-handling proteins, ion channel development and electrophysiological maturation of hESC-CMs did not occur when hESC-CMs were isolated from EBs early and maintained in culture without further interaction with non-cardiomyocytes. Adding back non-cardiomyocytes to early-isolated hESC-CMs rescued the arrest of electrophysiological maturation, indicating that non-cardiomyocytes in EBs drive electrophysiological maturation of early hESC-CMs. Non-cardiomyocytes in EBs contain most cell types present in the embryonic heart that are known to influence early cardiac development. Our study is the first to demonstrate that non-cardiomyocytes influence electrophysiological maturation of early hESC-CMs in cultures. Defining the nature of these extrinsic signals will aid in the directed maturation of immature hESC-CMs to mitigate arrhythmogenic risks of cell-based therapies.

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Cite This Study

Kim et al. (2009) studied Electrophysiological maturation of human embryonic stem cell-derived cardiomyocytes. Co-culture with non-cardiomyocytes vs. Isolated hESC-CMs without non-cardiomyocytes was evaluated on Electrophysiological maturation (Vmax, APA, MDP). Adding non-cardiomyocytes back to early-isolated human embryonic stem cell-derived cardiomyocytes rescued the arrest of electrophysiological maturation, indicating that non-cardiomyocytes drive electrical maturation.

synapsesocial.com/papers/6a1c8e8e94dbf6307b2feb26https://doi.org/10.1089/scd.2009.0349
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Also Consider

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