Calcium signaling regulates ventricular hypertrophy during development independent of contraction or blood flow
Nicholas D Andersen1, Kapil V Ramachandran2, Michelle M Bao3
1Department of Surgery (Cardiovascular and Thoracic), Duke University Medical Center, Durham, NC, USA.
Insights
Heart chamber growth in development relies on calcium (Ca2+) signaling, not fluid forces. This calcium-dependent pathway is crucial for cardiomyocyte hypertrophy, independent of heart function.
Area of Science:
- Developmental Biology
- Cardiovascular Physiology
- Molecular Cardiology
Background:
- Prenatal interventions for hypoplastic left heart syndrome show ventricular growth doesn't depend on hemodynamic forces.
- Existing hypotheses suggest fluid forces are key for chamber development.
Purpose of the Study:
- To investigate if ventricular hypertrophy during development relies on Ca(2+)-dependent pathways independent of hemodynamic forces.
- To determine the role of calcium signaling in cardiomyocyte growth during heart formation.
Main Methods:
- Zebrafish embryos were treated with calcium signaling inhibitors/activators.
- Experiments were conducted with and without embryonic cardiac contraction.
- The impact on ventricular hypertrophy was assessed.
Main Results:
- Abolishing contraction did not impair hypertrophy if Ca(2+) signaling was preserved.
- Inhibiting L-type voltage-gated Ca(2+) influx reduced hypertrophy.
- Enhanced Ca(2+) influx increased hypertrophy, regardless of contraction.
- Inhibition of calcineurin reduced hypertrophy, but constitutive calcineurin expression rescued it.
Conclusions:
- Ventricular cardiomyocyte hypertrophy during chamber formation depends on Ca(2+) signaling pathways.
- These pathways are independent of heart function and hemodynamic forces.
- Disrupted Ca(2+)-dependent hypertrophy may cause impaired chamber formation unrelated to blood flow.
Abstract:
In utero interventions aimed at restoring left ventricular hemodynamic forces in fetuses with prenatally diagnosed hypoplastic left heart syndrome failed to stimulate ventricular myocardial growth during gestation, suggesting chamber growth during development may not rely upon fluid forces. We therefore hypothesized that ventricular hypertrophy during development may depend upon fundamental Ca(2+)-dependent growth pathways that function independent of hemodynamic forces. To test this hypothesis, zebrafish embryos were treated with inhibitors or activators of Ca(2+) signaling in the presence or absence of contraction during the period of chamber development. Abolishment of contractile function alone in the setting of preserved Ca(2+) signaling did not impair ventricular hypertrophy. In contrast, inhibition of L-type voltage-gated Ca(2+) influx abolished contraction and led to reduced ventricular hypertrophy, whereas increasing L-type voltage-gated Ca(2+) influx led to enhanced ventricular hypertrophy in either the presence or absence of contraction. Similarly, inhibition of the downstream Ca(2+)-sensitive phosphatase calcineurin, a known regulator of adult cardiac hypertrophy, led to reduced ventricular hypertrophy in the presence or absence of contraction, whereas hypertrophy was rescued in the absence of L-type voltage-gated Ca(2+) influx and contraction by expression of a constitutively active calcineurin. These data suggest that ventricular cardiomyocyte hypertrophy during chamber formation is dependent upon Ca(2+) signaling pathways that are unaffected by heart function or hemodynamic forces. Disruption of Ca(2+)-dependent hypertrophy during heart development may therefore represent one mechanism for impaired chamber formation that is not related to impaired blood flow.
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