Literature DB >> 6399344

Role of magnesium and potassium in the pathogenesis of arteriosclerosis.

Y Rayssiguier.   

Abstract

In studies concerning risk factors for cardiovascular diseases, a number of reports have emphasized the influence of lipids, but the role of dietary minerals other than sodium has been less studied. However, epidemiological studies have suggested that dietary intake of magnesium and potassium may be involved in such pathogenesis. Studies of the influence of magnesium deficiency on arteriosclerosis include its effect on the initial lesion, altered metabolism of elastin, proliferation of collagen, calcification, lipid metabolism, platelet aggregation and hypertension. Magnesium and potassium metabolism are closely related and magnesium is required for maintaining the level of cellular potassium. As a consequence, magnesium and potassium deficiency frequently occur together and potassium deficiency may be an aggravating factor in pathogenesis. The development of the initial lesion in the arterial wall may be facilitated by loss of cellular magnesium and potassium. Experimental magnesium deficiency induces arterial damage, a loss of magnesium and potassium and an increase in the calcium and sodium content of the cell. Experimental models that have been used to produce cardiovascular lesions induce similar changes and losses of major intracellular cations may affect the main metabolic processes of the cell. This report summarizes the experimental evidence that magnesium deficiency may affect several different stages involved in arteriosclerosis and that potassium deficiency may exacerbate this. Magnesium deficiency results in vascular calcification. Experiments indicate that elastin is the site of the initial calcification and the metabolism of elastin is altered. This vascular lesion then brings about an increase in the collagen content of the wall. Low magnesium status could probably affect this process by slowing collagen resorption and lead to an irreversible accumulation of connective tissue. Results showing a different distribution of the various types of lipoprotein during experimental magnesium deficiency strongly suggest that lipid exchange between the vessel walls and blood can be modified. Severe magnesium deficiency in weanling rats produces a marked hypertriglyceridemia, a decrease in the percentage of cholesterol transported by HDL lipoprotein and a reduction in LCAT activity. The decreased clearance of circulatory triglycerides appears to be the major mechanism contributing to hyperlipemia. Magnesium deficiency could therefore contribute to accumulation of vascular lipid. Magnesium and potassium depletion have also been reported in diabetes and the vascular implications of this should be considered.(ABSTRACT TRUNCATED AT 400 WORDS)

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Year:  1984        PMID: 6399344

Source DB:  PubMed          Journal:  Magnesium        ISSN: 0252-1156


  12 in total

1.  Vascular calcification and magnesium.

Authors:  Friedrich C Luft
Journal:  J Mol Med (Berl)       Date:  2010-05       Impact factor: 4.599

2.  Associations of serum Magnesium levels with diabetes mellitus and diabetic complications.

Authors:  D Arpaci; A G Tocoglu; H Ergenc; S Korkmaz; A Ucar; A Tamer
Journal:  Hippokratia       Date:  2015 Apr-Jun       Impact factor: 0.471

Review 3.  Nutrition for diabetic retinopathy: plummeting the inevitable threat of diabetic vision loss.

Authors:  Yashodhara Sharma; Sandeep Saxena; Arvind Mishra; Anita Saxena; Shankar Madhav Natu
Journal:  Eur J Nutr       Date:  2017-03-03       Impact factor: 5.614

Review 4.  Iron, zinc and magnesium nutrition and athletic performance.

Authors:  R McDonald; C L Keen
Journal:  Sports Med       Date:  1988-03       Impact factor: 11.136

5.  The effect of variable magnesium intake on potential factors influencing endurance capacity.

Authors:  P Lowney; M E Gershwin; L S Hurley; J S Stern; C L Keen
Journal:  Biol Trace Elem Res       Date:  1988-06       Impact factor: 3.738

Review 6.  Inflammation and the osteogenic regulation of vascular calcification: a review and perspective.

Authors:  Jian-Su Shao; Su-Li Cheng; Justin Sadhu; Dwight A Towler
Journal:  Hypertension       Date:  2010-01-25       Impact factor: 10.190

7.  Defective lipid metabolism associated with mutation in klf-2 and klf-3: important roles of essential dietary salts in fat storage.

Authors:  Jun Ling; Christopher Brey; Megan Schilling; Farah Lateef; Zenaida P Lopez-Dee; Kristopher Fernandes; Kavita Thiruchelvam; Yi Wang; Kshitij Chandel; Kai Rau; Ranjit Parhar; Futwan Al-Mohanna; Randy Gaugler; Sarwar Hashmi
Journal:  Nutr Metab (Lond)       Date:  2017-02-28       Impact factor: 4.169

Review 8.  The Importance of Magnesium in Clinical Healthcare.

Authors:  Gerry K Schwalfenberg; Stephen J Genuis
Journal:  Scientifica (Cairo)       Date:  2017-09-28

9.  Association of serum magnesium with type 2 diabetes mellitus and diabetic retinopathy.

Authors:  Pratyush Kumar; Seema Bhargava; Pankaj Kumar Agarwal; Ambuj Garg; Amit Khosla
Journal:  J Family Med Prim Care       Date:  2019-05

10.  Hypomagnesemia in type 2 diabetes mellitus.

Authors:  Arundhati Dasgupta; Dipti Sarma; Uma Kaimal Saikia
Journal:  Indian J Endocrinol Metab       Date:  2012-11
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