Hyperglycemia inhibits capacitative calcium entry and hypertrophy in neonatal cardiomyocytes

Yi Pang1, Dacia L Hunton, Pam Bounelis

  • 1Department of Cell Biology, University of Alabama at Birmingham, 1530 3rd Avenue South, Birmingham, AL 35294-0005, USA.

Diabetes
|November 28, 2002
PubMed

Insights

Hyperglycemia impairs capacitative calcium entry (CCE) in heart cells, contributing to diabetic cardiomyopathy. This impaired CCE may explain both disease progression and protection against ischemia in diabetic models.

Area of Science:

  • Cardiovascular Physiology
  • Cellular Biology
  • Endocrinology

Background:

  • Diabetic cardiomyopathy involves cardiomyocyte apoptosis and heart failure.
  • Hyperglycemia can paradoxically protect against ischemia-induced damage by limiting calcium overload.
  • Capacitative calcium entry (CCE) is a crucial calcium influx pathway in cardiomyocytes.

Purpose of the Study:

  • To investigate the effect of hyperglycemia on CCE in cardiomyocytes.
  • To determine if hyperglycemia-induced changes in CCE contribute to diabetic cardiomyopathy.
  • To explore the mechanisms underlying hyperglycemia's impact on CCE.

Main Methods:

  • Neonatal rat cardiomyocytes were used to study CCE.
  • CCE was induced by angiotensin II and thapsigargin.
  • Hyperglycemia's effects on CCE, hypertrophic responses, and nuclear factor translocation were assessed.
  • Involvement of hexosamine biosynthesis and oxidative stress was examined.

Main Results:

  • Hyperglycemia significantly decreased CCE in cardiomyocytes.
  • Hyperglycemia blunted calcium-dependent hypertrophic responses and nuclear factor translocation.
  • Inhibition of CCE by hyperglycemia was partially prevented by targeting hexosamine biosynthesis and oxidative stress.

Conclusions:

  • Hyperglycemia-induced inhibition of CCE is a key factor in the development of diabetic cardiomyopathy.
  • Altered CCE may explain both the detrimental effects and protective mechanisms observed in diabetic models.
  • Targeting hexosamine biosynthesis or oxidative stress could be potential therapeutic strategies.

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