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January 19, 2016Nature Communications181 citationsOpen Access

Autonomous beating rate adaptation in human stem cell-derived cardiomyocytes

GEGeorge EngBLBenjamin W. LeeLPLev Protas

Key Result

Electrical conditioning of human stem cell-derived cardiomyocytes in three-dimensional culture promotes maturation and causes cells to adapt their autonomous beating rate to the stimulation frequency.

Structured PICO

Does electrical stimulation promote maturation and regulate the intrinsic beating properties of human stem cell-derived cardiomyocytes?

P
Population
Human embryonic or induced pluripotent stem cell (hESC or iPSC)-derived cardiomyocytes cultured as three-dimensional embryoid bodies
I
Intervention
Continuous electrical stimulation at 0.5 Hz, 1 Hz, or 2 Hz for 7 days in a microbioreactor
C
Comparator
Unstimulated control cardiomyocytes
O
Outcome
Cardiomyocyte maturation, autonomous beating rate adaptation, and electromechanical functionsurrogate

Electrical conditioning of human stem cell-derived cardiomyocytes promotes structural and electrophysiological maturation, allowing them to adapt their autonomous beating rate, which may reduce arrhythmogenicity in future cell-based cardiac regeneration therapies.

Limitations

  • The degree of maturation of cardiomyocytes that would be necessary for therapeutic use remains an open question.
  • The precise link between electrical pacing in vitro and whole heart pacing remains unclear.
  • Measurements of conduction velocities using either voltage-sensitive dyes or multi-electrode arrays give unreliable representations of the three-dimensional conduction within an embryoid body.

Abstract

The therapeutic success of human stem cell-derived cardiomyocytes critically depends on their ability to respond to and integrate with the surrounding electromechanical environment. Currently, the immaturity of human cardiomyocytes derived from stem cells limits their utility for regenerative medicine and biological research. We hypothesize that biomimetic electrical signals regulate the intrinsic beating properties of cardiomyocytes. Here we show that electrical conditioning of human stem cell-derived cardiomyocytes in three-dimensional culture promotes cardiomyocyte maturation, alters their automaticity and enhances connexin expression. Cardiomyocytes adapt their autonomous beating rate to the frequency at which they were stimulated, an effect mediated by the emergence of a rapidly depolarizing cell population, and the expression of hERG. This rate-adaptive behaviour is long lasting and transferable to the surrounding cardiomyocytes. Thus, electrical conditioning may be used to promote cardiomyocyte maturation and establish their automaticity, with implications for cell-based reduction of arrhythmia during heart regeneration.

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Cite This Study

Eng et al. (2016) studied Stem cell-derived cardiomyocytes. Electrical stimulation vs. Unstimulated control was evaluated on Spontaneous beating rate adaptation. Electrical conditioning of human stem cell-derived cardiomyocytes in three-dimensional culture promotes maturation and causes cells to adapt their autonomous beating rate to the stimulation frequency.

synapsesocial.com/papers/6a15f3871362a77db8e3df48https://doi.org/10.1038/ncomms10312
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