Myocardial Dysfunction after Severe Food Restriction Is Linked to Changes in the Calcium-Handling Properties in Rats

Adriana Fernandes de Deus1, Vítor Loureiro da Silva1, Sérgio Luiz Borges de Souza1

  • 1Department of Internal Medicine, Botucatu Medical School, São Paulo State University, Botucatu 18618687, Brazil.

Nutrients
|August 25, 2019
PubMed

Insights

Severe food restriction impairs heart function by altering calcium handling proteins. This study found reduced heart weight and impaired muscle contractility in rats on a restricted diet.

Area of Science:

  • Cardiology
  • Physiology
  • Nutritional Science

Background:

  • Severe food restriction (FR) is known to impair cardiac performance.
  • The precise mechanisms underlying this cardiac dysfunction, particularly concerning calcium handling proteins, remain unclear.

Purpose of the Study:

  • To investigate whether severe FR leads to changes in the expression and activity of calcium (Ca2+)-handling proteins.
  • To determine if these alterations contribute to impaired myocardial performance.

Main Methods:

  • Male Wistar-Kyoto rats were subjected to severe FR (50% diet reduction) for 90 days.
  • Evaluated body composition, cardiac remodeling, and myocardial contractile performance in isolated papillary muscles.
  • Analyzed the expression of Ca2+-handling proteins using Western Blot and assessed sarcoplasmic reticulum Ca2+-ATPase (SERCA2a) activity.

Main Results:

  • Severe FR significantly reduced body weight, adiposity, and heart weight (nearly twofold lower).
  • Papillary muscles from FR rats showed mechanical dysfunction, with decreased tension, contractility, and relaxation.
  • Impaired SERCA2a activity and reduced expression of L-type Ca2+ channels were observed in FR rats.

Conclusions:

  • Severe food restriction induces myocardial dysfunction in rats.
  • This dysfunction is associated with significant alterations in myocardial calcium-handling protein expression and activity, including impaired SERCA2a function and reduced L-type Ca2+ channels.

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