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Viability Assays for Cells in Culture
Published on: January 20, 2014
Protective mechanisms of Mg-gluconate against oxidative endothelial cytotoxicity
I T Mak1, A M Komarov, J H Kramer
1Department of Physiology and Experimental Medicine, The George Washington University Medical Center, Washington, DC 20037, USA. itmak@gwu.edu
Abstract:
The potential anti-radical properties and cytoprotective effects of Mg-gluconate were studied. When microsomal membranes were peroxidized by a *O2- driven, Fe-catalyzed oxy-radical system (R* = dihydroxyfumarate + Fe2+), Mg-gluconate inhibited lipid peroxidation (TBARS formation) in a concentration-dependent manner with IC50 being 2.3 mM. For the entire range of .25-2 mM, MgSO4 or MgCl2 were < or = 20% effective compared to Mg-gluconate. When cultured bovine aortic endothelial cells were incubated with the R* for 50 min. at 37 degrees C, 56% loss of total glutathione occurred. Pre-treatment (10 min.) of the cells with 0.25-4 mM Mg-gluconate before R* exposure significantly (p<0.05) prevented the GSH loss to varying degrees; the EC50 was 1.1 mM. In separate experiments, with 30 min. of free radical incubation of endothelial monolayers (approximately 65% confluent), cell survival/proliferation determined by the tetrazolium salt MTT assay, decreased to 38% of control at 24 hrs; Mg-gluconate concentration-dependently attenuated the lost cell survival with EC50 of approximately 1.3 mM. For comparison, the effects provided by MgSO4 or MgCl2 were significantly lower and were < or = 1/3 as potent as that produced by Mg-gluconate. In a Fenton-reaction system consisting of Fe(II)+ H2O2, Mg-gluconate but not other Mg-salts, significantly inhibited the formation of OH radicals as determined by the ESR DMPO-OH signal intensity. Mg-gluconate also dose-dependently inhibited the 'Fe-catalyzed' deoxyribose degradation suggesting that Mg-gluconate could displace Fe from 'catalytic sites' of oxidative damage. These data suggest that Mg-gluconate may serve as a more advantageous Mg-salt for clinical use due to its additional anti-radical and cytoprotective activities.
Insights
Magnesium gluconate exhibits significant anti-radical and cytoprotective effects, outperforming other magnesium salts in preventing oxidative damage and cell death. This suggests its potential as a superior magnesium supplement for clinical applications.
Area of Science:
- Biochemistry
- Cell Biology
- Pharmacology
Background:
- Oxidative stress contributes to cellular damage and disease.
- Magnesium plays a crucial role in cellular functions.
- The anti-radical and cytoprotective properties of magnesium salts require further investigation.
Purpose of the Study:
- To evaluate the anti-radical and cytoprotective potential of magnesium gluconate.
- To compare the efficacy of magnesium gluconate with other magnesium salts (magnesium sulfate and magnesium chloride).
- To explore the mechanism of action of magnesium gluconate in mitigating oxidative damage.
Main Methods:
- Lipid peroxidation inhibition assay (TBARS formation).
- Glutathione (GSH) loss assay in cultured endothelial cells.
- Cell survival and proliferation assay (MTT assay).
- Hydroxyl radical (OH) formation assay (ESR spectroscopy).
- Deoxyribose degradation assay.
Main Results:
- Magnesium gluconate inhibited lipid peroxidation with an IC50 of 2.3 mM, significantly more effective than MgSO4 or MgCl2.
- Magnesium gluconate protected endothelial cells from GSH loss (EC50 = 1.1 mM) and preserved cell survival (EC50 ≈ 1.3 mM) against oxidative stress.
- Magnesium gluconate demonstrated superior efficacy compared to other Mg salts, being up to three times more potent.
- Magnesium gluconate inhibited hydroxyl radical formation and iron-catalyzed deoxyribose degradation, suggesting displacement of iron from catalytic sites.
Conclusions:
- Magnesium gluconate possesses significant anti-radical and cytoprotective properties.
- Magnesium gluconate is more effective than magnesium sulfate and magnesium chloride in combating oxidative damage.
- These findings suggest that magnesium gluconate may be a more advantageous magnesium salt for clinical use due to its enhanced biological activities.
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