Literature DB >> 7836621

Consequences of magnesium deficiency on the enhancement of stress reactions; preventive and therapeutic implications (a review).

M S Seelig1.   

Abstract

Stress intensifies release of catecholamines and corticosteroids that increase survival of normal animals when their lives are threatened. When magnesium (Mg) deficiency exists, stress paradoxically increases risk of cardiovascular damage including hypertension, cerebrovascular and coronary constriction and occlusion, arrhythmias and sudden cardiac death (SCD). In affluent societies, severe dietary Mg deficiency is uncommon, but dietary imbalances such as high intakes of fat and/or calcium (Ca) can intensify Mg inadequacy, especially under conditions of stress. Adrenergic stimulation of lipolysis can intensify its deficiency by complexing Mg with liberated fatty acids (FA), A low Mg/Ca ratio increases release of catecholamines, which lowers tissue (i.e. myocardial) Mg levels. It also favors excess release or formation of factors (derived both from FA metabolism and the endothelium), that are vasoconstrictive and platelet aggregating; a high Ca/Mg ratio also directly favors blood coagulation, which is also favored by excess fat and its mobilization during adrenergic lipolysis. Auto-oxidation of catecholamines yields free radicals, which explains the enhancement of the protective effect of Mg by anti-oxidant nutrients against cardiac damage caused by beta-catecholamines. Thus, stress, whether physical (i.e. exertion, heat, cold, trauma--accidental or surgical, burns), or emotional (i.e. pain, anxiety, excitement or depression) and dyspnea as in asthma increases need for Mg. Genetic differences in Mg utilization may account for differences in vulnerability to Mg deficiency and differences in body responses to stress.

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Year:  1994        PMID: 7836621     DOI: 10.1080/07315724.1994.10718432

Source DB:  PubMed          Journal:  J Am Coll Nutr        ISSN: 0731-5724            Impact factor:   3.169


  23 in total

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Review 2.  Magnesium in acute myocardial infarction: scientific, statistical, and economic rationale for its use.

Authors:  E M Antman; M S Seelig; K Fleischmann; J Lau; K Kuntz; C S Berkey; M W McIntosh
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3.  Deficiency of calcium and magnesium induces apoptosis via scavenger receptor BI.

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Journal:  Life Sci       Date:  2011-02-01       Impact factor: 5.037

4.  Association of energy adjusts nutrient-rich foods on mental health among obese and overweight women: a cross-sectional study.

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5.  Luminal Mg2+, a key factor controlling RYR2-mediated Ca2+ release: cytoplasmic and luminal regulation modeled in a tetrameric channel.

Authors:  Derek R Laver; Bonny N Honen
Journal:  J Gen Physiol       Date:  2008-10       Impact factor: 4.086

6.  Do the Micronutrients Zinc and Magnesium Play a Role in Adult Depression?

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Journal:  Top Clin Nutr       Date:  2011 Jul-Sep       Impact factor: 0.508

7.  Mathematical modeling the neuroregulation of blood pressure using a cognitive top-down approach.

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Journal:  N Am J Med Sci       Date:  2010-08

8.  Magnesium deficiency induces anxiety and HPA axis dysregulation: modulation by therapeutic drug treatment.

Authors:  S B Sartori; N Whittle; A Hetzenauer; N Singewald
Journal:  Neuropharmacology       Date:  2011-08-04       Impact factor: 5.250

Review 9.  The nerve-heart connection in the pro-oxidant response to Mg-deficiency.

Authors:  Maria Isabel Tejero-Taldo; Jay Harlan Kramer; Iu Tong Mak; Andrei M Komarov; William Bernard Weglicki
Journal:  Heart Fail Rev       Date:  2006-03       Impact factor: 4.654

10.  Placebo-controlled dietary intervention of stress-induced neurovegetative disorders with a specific amino acid composition: a pilot-study.

Authors:  Katrin Chaborski; Norman Bitterlich; Birgit Alteheld; Elke Parsi; Christine Metzner
Journal:  Nutr J       Date:  2015-05-06       Impact factor: 3.271

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