Decreased Ca2+ extrusion via Na+/Ca2+ exchange in epicardial left ventricular myocytes during compensated hypertrophy

Mark R Fowler1, James R Naz, Mark D Graham

  • 1School of Biomedical Sciences, University of Leeds, Leeds, West Yorkshire, United Kingdom.

Insights

Hypertension causes cardiac hypertrophy, altering calcium handling in heart cells. In spontaneously hypertensive rats, reduced sodium-calcium exchanger (NCX) activity in subepicardial cells increases calcium stores, boosting contraction strength.

Area of Science:

  • Cardiovascular Physiology
  • Cellular Biology
  • Biochemistry

Background:

  • Hypertension leads to cardiac hypertrophy, a thickening of the heart muscle.
  • Cardiac hypertrophy alters the function of ventricular myocytes, affecting calcium handling.
  • Understanding these alterations is crucial for managing heart disease.

Purpose of the Study:

  • To investigate the mechanisms behind altered systolic calcium (Ca2+) transients in hypertensive cardiac hypertrophy.
  • To compare calcium cycling in subepicardial and subendocardial myocytes of spontaneously hypertensive rats (SHR) and Wistar-Kyoto rats (WKY).

Main Methods:

  • Isolated left ventricular myocytes from 20-week-old SHR and WKY rats.
  • Intracellular Ca2+ monitoring using fluo 3 or fura 2.
  • Assessment of sarcoplasmic reticulum (SR) Ca2+ content and Na+/Ca2+ exchanger (NCX) function.

Main Results:

  • SHR myocytes were larger than WKY myocytes, indicating hypertrophy.
  • Subepicardial SHR myocytes exhibited increased Ca2+ transient amplitude and SR Ca2+ content.
  • Reduced NCX activity was observed in subepicardial SHR myocytes compared to WKY.
  • No significant changes in these parameters were found in subendocardial myocytes.
  • Ca2+ transient time to peak was shorter in subepicardial cells and prolonged in subendocardial SHR cells.

Conclusions:

  • Decreased NCX activity in subepicardial myocytes is a key mechanism in compensated hypertensive cardiac hypertrophy.
  • This reduction in NCX activity enhances SR Ca2+ content and Ca2+ transient amplitude.
  • These adaptations help maintain cardiac contractility despite increased afterload.

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