To study possible modulation of Mg(2+) transport in low Mg(2+) conditions, we fed either a Mg-deficient diet or a Mg-containing diet (control) to Wistar rats for 1-6 weeks. Total Mg concentrations in serum and cardiac ventricular tissues were measured by atomic absorption spectroscopy. Intracellular free Mg(2+) concentration ([Mg(2+)]i) of ventricular myocytes was measured with the fluorescent indicator furaptra. Mg(2+) transport rates, rates of Mg(2+) influx and Mg(2+) efflux, were estimated from the rates of change in [Mg(2+)]i during Mg loading/depletion and recovery procedures. In Mg-deficient rats, the serum total Mg concentration (0.29±0.026 mM) was significantly lower than in control rats (0.86±0.072 mM) after 4-6 weeks of Mg deficiency. However, neither total Mg concentration in ventricular tissues nor [Mg(2+)]i of ventricular myocytes was significantly different between Mg-deficient rats and control rats. The rates of Mg(2+) influx and efflux were not significantly different in both groups. In addition, quantitative RT-PCR revealed that Mg deficiency did not substantially change mRNA expression levels of known Mg(2+) channels/transporters (TRPM6, TRPM7, MagT1, SLC41A1 and ACDP2) in heart and kidney tissues. These results suggest that [Mg(2+)]i as well as the total Mg content of cardiac myocytes, was well maintained even under chronic hypomagnesemia without persistent modulation in function and expression of major Mg(2+) channels/transporters in the heart.
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J Pharmacol Sci
February 2022
Department of Internal Medicine, Division of Cardiology, Juntendo University, Faculty of Medicine, 2-1-1 Hongo, Bunkyo-ku, Tokyo 113-8421, Japan; Department of Radiological Technology, Juntendo University, Faculty of Health Science, 2-1-1 Hongo, Bunkyo-ku, Tokyo 113-8421, Japan.
Chronic magnesium (Mg) deficiency induces and exacerbates various cardiovascular diseases. We previously investigated the mechanisms underlying decline in cardiac function caused by chronic Mg deficiency and the effectiveness of Mg supplementation on this decline using the Langendorff-perfused isolated mouse heart model. Herein, we used the Langendorff-perfused isolated rat heart model to demonstrate the chronic Mg-deficient rats (Mg-deficient group) had lower the heart rate (HR) and left ventricular pressure (LVDP) than rats with normal Mg levels (normal group).
View Article and Find Full Text PDFBackground: Mechanisms for QT interval prolongation and cardiac arrhythmogenesis in hypomagnesemia are poorly understood. This study investigated the potential molecular mechanism for QT prolongation caused by magnesium (Mg) deficiency in rats by using the patch clamp technique and molecular biology.
Methods and results: Male Wistar rats were fed an Mg-free diet or a normal diet for up to 12 weeks.
Magnes Res
August 2017
PEPITE EA4267, laboratoire de toxicologie cellulaire, Université Bourgogne-Franche-Comté, 25000 Besançon, France.
Hepatocyte nuclear factor 1β (HNF1β) is a transcription factor that is involved in embryonic development and tissue-specific gene expression in several organs, including the kidney and the liver. HNF1β mutations are associated with hypomagnesemia and renal magnesium wasting; however, to date, the exact molecular mechanism involved in this regulation is unclear. Furthermore, it is not known whether the Mg concentration could per se participate to this regulation by modifying HNF1β expression.
View Article and Find Full Text PDFBMC Musculoskelet Disord
September 2017
Graduate School of Health and Sports Science, Juntendo University, Chiba, Japan.
Background: The major types of commercially available gelatin hydrolysates are prepared from mammals or fish. Dietary gelatin hydrolysates from mammals were reported to improve bone mineral density (BMD) in some animal models. In contrast, there is limited study showing the effects of dietary gelatin hydrolysates from fish on BMD.
View Article and Find Full Text PDFMagnes Res
April 2016
UMR Physiologie de la nutrition et du comportement alimentaire, AgroParisTech, Inra, Université Paris-Saclay, 75005 Paris.
Obesity and related metabolic diseases are associated with increased risk of cardiovascular disease. We have previously shown the beneficial effects of dietary magnesium (Mg) supplementation on cardiovascular disease in rats. Therefore, we aimed to examine the effect of an Mg-deficient or supplemented diet on adipose tissue cellularity changes during aging, and on blood pressure (BP), in rats.
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