Manganese depresses rat heart muscle respiration

Kevin B Miller1, Joel S Caton, John W Finley

  • 1Department of Animal and Range Science, North Dakota State University, Fargo, ND 58105, USA.

Insights

High dietary manganese (Mn) intake with marginal magnesium (Mg) affects heart muscle respiration and Mn retention in rats. This study found no evidence of increased oxidative stress or altered calcium transport due to high Mn.

Area of Science:

  • Biochemistry
  • Nutritional Science
  • Toxicology

Background:

  • Dietary manganese (Mn) can interfere with magnesium (Mg) in biological functions.
  • High Mn intake, especially with marginal Mg, may lead to mitochondrial damage.
  • The potential for Mn to substitute for Mg in enzyme cofactor roles is a concern.

Purpose of the Study:

  • To investigate the effects of high dietary Mn on heart muscle respiration and Mg-enzyme activity under marginal Mg conditions.
  • To assess whole-body Mn retention and oxidative stress levels in response to high Mn intake.
  • To determine if high Mn alters myocardial integrity and function.

Main Methods:

  • Three experiments involving rats fed diets with varying levels of Mn and Mg.
  • Measurement of oxygen consumption in left ventricle muscle.
  • Assay of sarcoplasmic reticulum calcium-ATPase enzyme activity.
  • Evaluation of (54)Mn kinetics (absorption, retention, excretion).
  • Assessment of cellular stress via Comet assay and antioxidant activities.

Main Results:

  • High Mn and marginal Mg reduced left ventricle oxygen consumption.
  • Marginal Mg, but not high Mn, reduced sarcoplasmic reticulum calcium-ATPase activity.
  • High dietary Mn decreased Mn absorption, retention, and excretion.
  • No significant increase in cellular stress or antioxidant activity was observed with high Mn.
  • A significant interaction between Mn and Mg was noted in hematology parameters.

Conclusions:

  • High dietary Mn, particularly with marginal Mg, alters myocardial function in rats.
  • These alterations are not attributed to changes in calcium transport or increased oxidative stress.
  • High Mn intake impacts Mn kinetics, reducing its absorption and retention.