Developmental differences in myocardial transmembrane Na+ transport: implications for excitability and Na+ handling

Natália F Oshiyama1,2, Ana H M Pereira3, Alisson C Cardoso3

  • 1Department of Biomedical Engineering, School of Electrical and Computer Engineering, University of Campinas, Campinas, São Paulo, Brazil.

Insights

Neonatal rat ventricular myocytes exhibit lower excitability due to developmental changes in sodium current (INa) properties. Activity-dependent sodium accumulation in neonates is primarily mediated by the Na+/Ca2+ exchanger, not INa.

Area of Science:

  • Cardiovascular Physiology
  • Developmental Biology
  • Molecular Cardiology

Background:

  • Myocardial sodium handling is crucial for cardiac excitability and calcium handling.
  • Developmental changes in these processes are not well understood.
  • Immature rat myocardium shows different responses to electrical stimulation compared to adults.

Purpose of the Study:

  • To investigate developmental changes in myocardial sodium handling in rat ventricular myocytes.
  • To elucidate the impact of these changes on cell excitability and calcium content.
  • To identify the primary pathways for sodium influx during electrical activity in neonatal myocytes.

Main Methods:

  • Isolation and electrophysiological recording of rat ventricular myocytes (neonates vs. adults).
  • Measurement of intracellular sodium concentration ([Na+ ]i) using CoroNa green.
  • Pharmacological inhibition of L-type Ca2+ current (CdCl2).
  • Analysis of Nav channel mRNA expression (Nav1.1, 1.4, 1.5, and β1 subunit).
  • Computer simulations of myocyte electrical activity.

Main Results:

  • Resting [Na+ ]i was similar in neonates and adults, but electrical stimulation caused a marked [Na+ ]i rise only in neonates.
  • Activity-dependent Na+ accumulation in neonates was abolished by CdCl2, indicating Na+/Ca2+ exchanger as the main pathway.
  • Neonatal myocytes had higher INa density, faster inactivation, and a rightward shift in voltage-dependence compared to adults.
  • mRNA levels showed increased Nav1.1, 1.4, 1.5 and decreased β1 subunit in neonates.
  • Computer simulations confirmed that altered INa properties decrease neonatal myocyte excitability.

Conclusions:

  • Developmental changes in Na+ channel isoforms and biophysical properties reduce neonatal ventricular myocyte excitability.
  • The Na+/Ca2+ exchanger, not voltage-dependent Na+ current, is the primary source of activity-dependent Na+ influx in immature myocytes.
  • Reduced excitability in the immature ventricle may protect against spontaneous activity development.

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