Sphingolipids regulate [Mg2+]o uptake and [Mg2+]i content in vascular smooth muscle cells: potential mechanisms and importance to membrane transport of Mg2+

Author:

Zheng Tao1,Li Wenyan1,Altura Bella T.123,Shah Nilank C.1,Altura Burton M.14235

Affiliation:

1. Departments of 1Physiology and Pharmacology and

2. Center For Cardiovascular and Muscle Research,

3. The School of Graduate Studies Program in Molecular and Cellular Science, State University of New York, Health Science Center at Brooklyn, Box31, 450 Clarkson Avenue, Brooklyn; and

4. Medicine,

5. Bio-Defense Systems Inc., Rockville Centre, New York

Abstract

Sphingolipids have a variety of important signaling roles in mammalian cells. We tested the hypothesis that certain sphingolipids and neutral sphingomyelinase (N-SMase) can regulate intracellular free magnesium ions ([Mg2+]i) in vascular smooth muscle (VSM) cells. Herein, we show that several sphingolipids, including C2-ceramide, C8-ceramide, C16-ceramide, and sphingosine, as well as N-SMase, have potent and direct effects on content and mobilization of [Mg2+]i in primary cultured rat aortic smooth muscle cells. All of these sphingolipid molecules increase, rapidly, [Mg2+]i in these vascular cells in a concentration-dependent manner. The increments of [Mg2+]i, induced by these agents, are derived from influx of extracellular Mg2+ and are extracellular Ca2+ concentration-dependent. Phospholipase C and Ca2+/calmodulin/Ca2+-ATPase activity appear to be important in the sphingolipid-induced rises of [Mg2+]i. Activation of certain PKC isozymes may also be required for sphingolipid-induced rises in [Mg2+]i. These novel results suggest that sphingolipids may be homeostatic regulators of extracellular Mg2+ concentration influx (and transport) and [Mg2+]i content in vascular muscle cells.

Publisher

American Physiological Society

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine,Physiology

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1. Serum sphingolipid profile in asthma;Journal of Leukocyte Biology;2021-02-18

2. Magnesium Deficiency, Sphingolipids, and Telomerase: Relevance to Atherogenesis, Cardiovascular Diseases, and Aging;Handbook of Famine, Starvation, and Nutrient Deprivation;2019

3. Magnesium Deficiency, Sphingolipids, and Telomerase: Relevance to Atherogenesis, Cardiovascular Diseases, and Aging;Handbook of Famine, Starvation, and Nutrient Deprivation;2018

4. Vascular sphingolipids in physiological and pathological adaptation;Frontiers in Bioscience;2016

5. Sphingolipid homeostasis in the web of metabolic routes;Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids;2014-05

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