Magnesium and Diabetes: A Review of Recent Studies on the Efficacy of Supplementation with Mg in Humans Suffering from This Chronic Metabolic Disease
Abstract
1. Introduction
1.1. Diabetes: Selected Issues in a Nutshell
1.1.1. Diabetes: Background
1.1.2. Diabetes Worldwide
1.1.3. Type 1 and Type 2 Diabetes Mellitus
1.1.4. Gestational Diabetes Mellitus
1.1.5. Insulin Resistance
1.1.6. Risk Factors for Diabetes
1.1.7. Complications of Diabetes
1.2. Magnesium: Selected Issues in a Nutshell
1.2.1. Role of Mg in Biological Systems
1.2.2. A Brief Historical Framework Related to Diabetes and Mg on the Timeline
2. Absorption, Distribution, and Renal Handling of Mg
3. Hypomagnesemia and Lifestyle-Related Diseases Including Diabetes and Obesity—A Brief Outline
4. Mechanisms of Hypomagnesemia in Diabetes—A Brief Overview
5. Mechanisms of Action of Mg in Diabetes—A Brief Outline
5.1. Effect on Glucose Transporter Protein Type-4 (GLUT4)
5.2. Effect on Insulin Receptor
5.3. Role in the Secretion and Action of Insulin
5.4. Oxidative Stress Reduction
5.5. Anti-Inflammatory Effects
5.6. Metal Ion Homeostasis
5.7. Mitochondrial Function
6. Mitochondria, Mg2+, Oxidative Stress, and Diabetes
7. Association of Mg with Metabolism of Other Essential Metals (Cu, Zn, Fe, Mn, Se, and V) in Diabetes
8. Methodology—Literature Search Strategy on Mg and Metabolic Profile in Diabetes in Humans
8.1. Databases: General Outline
8.2. Query Terms Used for the Literature Search on Mg and Metabolic Profile in Diabetes in Humans
8.3. Search Results and Literature Review Flowchart on Mg in Diabetes in Humans
9. Effects of Oral Mg Supplementation on Diabetes: Humans—A Summarizing Note
10. Summary and Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Type of Study | Condition | Number of Treated Subjects | Age (Years, Mean ± SD) | Mg Compound/Dosage | Time of Treatment | Results | Ref. |
|---|---|---|---|---|---|---|---|
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 35 | 55.4 ± 10.2 | Mg oxide 20.7 mmoL/d | 30 d | FPG → HbA1c → | [207] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 39 | 51.2 ± 11.0 | Mg oxide 41.4 mmoL/d | 30 d | FPG → HbA1c → | [207] |
| Randomized, double-blinded, placebo-controlled | T2DM and HBP Hypo-Mg | n = 40 | 58.9 ± 8.5 | Mg chloride (450 mg/d of elemental Mg) | 4 mo | FPG → HbA1c → | [208] |
| Randomized controlled clinical trial | T2DM and depression Hypo-Mg | n = 12 | 69 ± 5.9 | Mg chloride (450 mg/d of elemental Mg) | 12 wk | FPG → HbA1c → | [209] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 18 | 63 ± 8.0 | Mg citrate 30 mmoL/d (730 mg/d of elemental Mg) | 3 mo | HbA1c → | [210] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM Hypo-Mg | n = 14 | 67 ± 6.0 | Mg gluconate 15 mmoL/d (360 mg/d of elemental Mg) | 6 wk | HbA1c → | [211] |
| Prospective, randomized, controlled, open-label | Type 2 DN Hypo-Mg Normo-Mg | n = 26 n = 14 n = 12 | 61.4 ± 7.5 | Mg citrate 15 mmoL (360 mg/d of elemental Mg) | 12 wk | HbA1c → HbA1c → | [212] |
| N/A | DM Hypo-Mg | n = 40 | N/A | Mg oxide 600 mg | 12 wk | FPG → | [213] |
| Randomized, double-blinded, placebo-controlled | IR Hypo-Mg | n = 32 | 43 ± 7.9 | Mg chloride 2.5 g (300 mg/d of elemental Mg) | 3 mo | ↓ HOMA-IR ↓ FPG | [214] |
| Randomized, double-blinded, placebo-controlled | Pre-D Hypo-Mg | n = 59 | 42.5 ± 9.5 | Mg chloride (382 mg/d of elemental Mg) | 4 mo | ↓ HOMA-IR ↓ FPG | [215] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 32 | 59.7 ± 8.3 | Mg chloride 2.5 g/d (12.8 mmoL/d) | 16 wk | ↓ HOMA-IR ↓ FPG ↓ HbA1c | [216] |
| Randomized, double-blinded, placebo-controlled | Grade 3 DFU Hypo-Mg | n = 29 | 57.2 ± 11.0 | Mg oxide + Vit. E 250 mg/d + 400 IU/d | 12 wk | ↓ HOMA-IR ↓ FPG ↓ HbA1c | [217] |
| Observational | T1DM Hypo-Mg | n = 20 | 11.2 ± 3.41 | Mg oxide 300 mg | 3 mo | ↓ HbA1c | [218] |
| Controlled | T2DM Hypo-Mg | n = 60 | N/A | Mg chloride tablet 300 mg/d | 16 wk | ↓ FPG | [219] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 63 ± 8.2 | Mg aspartate 15 mmoL/d | 3 mo | FPG → HbA1c → | [220] |
| Randomized, double-blinded, cross-over | T2DM | n = 27 | 61 ± 2.0 | Mg (unspecified compound) 600 mg/d (24.7 mmoL/d) | 90 d | FPG → HbA1c → | [221] |
| Randomized, double-blinded, cross-over | T1DM | n = 29 | 43 ± 2.0 | Mg (unspecified compound) 600 mg/d (24.7 mmoL/d) | 90 d | FPG → HbA1c → | [221] |
| Randomized, placebo-controlled | T2DM | n = 26 | 63 ± 5.0 | Mg pidolate 4.5 g/d (16.2 mmoL/d) | 1 mo | FPG → HbA1c → | [222] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 64 ± 8.0 | Mg lactate-citrate 15 mmoL/d (184.5 mg/d of elemental Mg) | 4 mo | FPG → HbA1c → | [223] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM | n = 56 | 52.84 ± 8.42 | Mg lactate 1.5 g/d (360 mg/d of elemental Mg) | 3 mo | FPG → HbA1c→ HOMA-IR → | [224] |
| Randomized, double-blinded, cross-over | T2DM | n = 4 | 73 ± 2.5 | Mg pidolate 4.5 g/d (15.8 mmoL/d) | 4 wk | FPG → Improvement of INS sensitivity and GLU oxidation | [225] |
| Controlled | T2DM | n = 30 | 71.1 ± 6.1 | Mg pidolate 368 mg/d | 1 mo | FPG → | [226] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM | n = 28 | 28–84 | Mg chloride 384 mg/d (1.9 mmoL/d) | 6 wk | GLU → | [227] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 46.76 ± 6.93 | Mg sulfate 300 mg/d of elemental Mg | 3 mo | HOMA-IR →, ↓ FPG HbA1c → | [228] |
| N/A | T2DM | n = 9 | 51.6 ± 2.6 | MAG21 solution (Mg chloride), 300 mg/d | 30 d | ↓ HOMA-IR, FPG → HbA1c → | [229] |
| Randomized, cross-sectional, controlled clinical trial | T2DM | n = 32 | 55.9 ± 8.9 | Mg chloride 50 mg/L daily | 3 mo | ↓ HOMA-IR, FPG → ↓ HbA1c | [230] |
| Randomized, double-blinded, placebo-controlled | Type 2 DN | n = 40 | 41.2 ± 8.8 | Mg oxide 250 mg (150 mg of elemental Mg) | 12 wk | ↑ HOMA-IR, FPG → HbA1c → | [231] |
| Randomized controlled clinical trial | T2DM | n = 20 | 35–60 | Mg tablets (oxide, gluconate, lactate) 250 mg/d of elemental Mg | 3 mo | ↓ HOMA-IR, ↙ FBS ↓ HbA1c | [232] |
| Randomized, double-blinded, placebo-controlled | T2DM with grade 3 DFU | n = 35 | 60.1 ± 11.1 | Mg oxide 250 mg/d | 12 wk | ↙ HOMA-IR, ↓ FPG ↓ HbA1c | [233] |
| Randomized, double-blinded, placebo-controlled | DHD | n = 27 | 58.8 ± 10.1 | Mg oxide 250 mg/d | 24 wk | ↓ HOMA-IR ↙ FPG ↓ HbA1c | [234] |
| Randomized, double-blinded, placebo-controlled | GDM | n = 30 | 30.1 ± 5.9 | Mg oxide + Vit. E 250 mg/d + 400 IU/d | 6 wk | ↓ HOMA-IR, ↓ FPG | [235] |
| Randomized, double-blinded, placebo-controlled | T2DM and CHD | n = 27 | 61.7 ± 9.4 | Mg oxide + Zn sulfate 250 mg/d + 150 mg/d | 12 wk | ↓ FPG | [236] |
| Randomized, cross-over | T2DM | n = 8 | 72.2 ± 2.0 | Mg pidolate 2 g/d (7.0 mmoL/d) | 4 wk | ↓ FPG Improvement of INS response and action | [237] |
| Randomized, double-blinded, placebo-controlled | GDM | n = 20 | 27.8 ± 3.4 | Mg oxide 250 mg/d | 6 wk | ↓ FPG | [238] |
| Double-blinded, placebo-controlled | GDM | n = 30 | N/A | Mg + Vit. E 250 mg/d + 400 mg/d | 6 wk | ↓ FPG Improvement of INS sensitivity | [239] |
| Randomized, double-blinded, placebo-controlled | IR | n = 25 | 30–70 | Mg aspartate hydrochloride 15 mmoL (365 mg/d of elemental Mg) | 6 mo | ↓ FPG ↓ ISI-HOMA | [240] |
| Randomized, double-blinded, placebo-controlled | T1DM | n = 3 | N/A | Mg hydroxide 20–30 mmoL/d | 12 mo | ↑ HbA1c | [241] |
| Type of Study | Condition | Number of Treated Subjects | Age (Years, Mean ± SD) | Mg concentration After Treatment | Biological Specimens | Units | Ref. |
|---|---|---|---|---|---|---|---|
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 35 | 55.4 ± 10.2 | 0.76 → 1.59 → 121 ↑ | Plasma MonoNC Urine | mmol/L μg/mg TP mg/24 h | [207] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 39 | 51.2 ± 11.0 | 0.80 ↗ 1.62 ↗ 113 ↑ | Plasma MonoNC Urine | mmol/L μg/mg TP mg/24 h | [207] |
| Randomized, double-blinded, placebo-controlled | T2DM and HBP Hypo-Mg | n = 40 | 58.9 ± 8.5 | 0.81 ↑ | Serum | mmol/L | [208] |
| Randomized controlled clinical trial | T2DM and depression Hypo-Mg | n = 12 | 69 ± 5.9 | 0.86 ↑ | Serum | mmol/L | [209] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 18 | 63 ± 8.0 | 0.81 ↑ 2.8 ↑ | Serum Urine | mmol/L mmol/24 h | [210] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM Hypo-Mg | n = 14 | 67 ± 6.0 | 0.75 ↑ 0.23 ↑ | Serum Urine | mmol/L Mg/Cre ratio | [211] |
| Prospective, randomized, controlled, open-label | Type 2 DN Hypo-Mg | n = 26 n = 14 | 61.4 ± 7.5 | 0.70 ↑ | Serum | mmol/L | [212] |
| Prospective, randomized, controlled, open-label | Type 2 DN Normo-Mg | n = 26 n = 12 | 61.4 ± 7.5 | 0.82 ↑ | Serum | mmol/L | [212] |
| Randomized, double-blinded, placebo-controlled | IR Hypo-Mg | n = 32 | 43 ± 7.9 | 0.81 ↑ | Serum | mmol/L | [214] |
| Randomized, double-blinded, placebo-controlled | Pre-D Hypo-Mg | n = 59 | 42.5 ± 9.5 | 0.81 ↑ | Serum | mmol/L | [215] |
| Randomized, double-blinded, placebo-controlled | T2DM Hypo-Mg | n = 32 | 59.7 ± 8.3 | 0.74 ↑ | Serum | mmol/L | [216] |
| Randomized, double-blinded, placebo-controlled | Grade 3 DFU Hypo-Mg | n = 29 | 57.2 ± 11.0 | 0.75 ↑ | Serum | mmol/L | [217] |
| Observational | T1DM Hypo-Mg | n = 20 | 11.2 ± 3.41 | 0.80 ↑ | Serum | mmol/L | [218] |
| Controlled | T2DM Hypo-Mg | n = 60 | N/A | 0.71 ↑ | Serum | mmol/L | [219] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 63 ± 8.2 | 0.82 ↑ 2.47 → 5.5 ↑ | Plasma RBC Urine | mmol/L mmol/L mmol/24 h | [220] |
| Randomized, double-blinded, cross-over | T1DM | n = 29 | 43 ± 2.0 | 0.80 ↗ 3.69 ↑ | Plasma Urine | mmol/L mmol/24 h | [221] |
| Randomized, double-blinded, cross-over | T2DM | n = 27 | 61 ± 2.0 | 0.79 ↑ 3.35 ↑ | Plasma Urine | mmol/L mmol/24 h | [221] |
| Randomized, placebo-controlled | T2DM | n = 26 | 63 ± 5.0 | 0.82 → 1.85 → | Serum RBC | mmol/L mmol/L | [222] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 64 ± 8.0 | N/A → | Serum | mmol/L | [223] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM | n = 56 | 52.84 ± 8.42 | 0.95 → | Serum | mmol/L | [224] |
| Randomized, double-blinded, cross-over | T2DM | n = 4 | 73 ± 2.5 | 0.89 ↑ 2.27 ↑ | Plasma RBC | mmol/L mmol/L | [225] |
| Controlled | T2DM | n = 30 | 71.1 ± 6.1 | 0.49 ↑ * 0.93 → ** | Serum Serum | mmol/L mmol/L | [226] |
| Randomized, double-blinded, placebo-controlled, cross-over | T2DM | n = 28 | 28–84 | N/A → N/A → | Serum RBC | mmol/L mmol/L | [227] |
| Randomized, double-blinded, placebo-controlled | T2DM | n = 25 | 46.76 ± 6.93 | 0.89 → 5.99 ↑ | Serum Urine | mmol/L mg/dL | [228] |
| N/A | T2DM | n = 9 | 51.6 ± 2.6 | 0.95 ↑ 9.2 ↑ | Serum Urine | mmol/L mg/dL | [229] |
| Randomized, double-blinded, placebo-controlled | Type 2 DN | n = 40 | 41.2 ± 8.8 | 0.99 → | Serum | mmol/L | [231] |
| Randomized controlled clinical trial | T2DM | n = 20 | 35–60 | 0.85 ↑ | Serum | mmol/L | [232] |
| Randomized, double-blinded, placebo-controlled | T2DM with grade 3 DFU | n = 35 | 61.1 ± 11.1 | 0.95 ↑ | Serum | mmol/L | [233] |
| Randomized, double-blinded, placebo-controlled | DHD | n = 27 | 58.8 ± 10.1 | 0.99 ↑ | Serum | mmol/L | [234] |
| Randomized, double-blinded, placebo-controlled | GDM | n = 30 | 30.1 ± 5.9 | 0.90 ↑ | Serum | mmol/L | [235] |
| Randomized, double-blinded, placebo-controlled | T2DM and CHD | n = 27 | 61.7 ± 9.4 | 0.86 ↑ | Serum | mmol/L | [236] |
| Randomized, cross-over | T2DM | n = 8 | 72.2 ± 2.0 | 0.86 ↑ 2.03 ↑ | Plasma RBC | mmol/L mmol/L | [237] |
| Randomized, double-blinded, placebo-controlled | GDM | n = 20 | 27.8 ± 3.4 | 0.78 ↑ | Serum | mmol/L | [238] |
| Randomized, double-blinded, placebo-controlled | IR | n = 25 | 30–70 | 0.922 ↗ 1.920 → 0.608 ↑ | Serum RBC WB | mmol/L mmol/L mmol/L | [240] |
| Randomized, double-blinded, cross-over | T2DM | n = 8 | 59–72 | 0.88 ↑ 2.08 ↑ | Plasma RBC | mmol/L mmol/L | [242] |
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Ścibior, A.; Aureliano, M.; Romanowska, Z.; Radko, L.; Męcik-Kronenberg, T. Magnesium and Diabetes: A Review of Recent Studies on the Efficacy of Supplementation with Mg in Humans Suffering from This Chronic Metabolic Disease. Int. J. Mol. Sci. 2026, 27, 7620. https://doi.org/10.3390/ijms27177620
Ścibior A, Aureliano M, Romanowska Z, Radko L, Męcik-Kronenberg T. Magnesium and Diabetes: A Review of Recent Studies on the Efficacy of Supplementation with Mg in Humans Suffering from This Chronic Metabolic Disease. International Journal of Molecular Sciences. 2026; 27(17):7620. https://doi.org/10.3390/ijms27177620
Chicago/Turabian StyleŚcibior, Agnieszka, Manuel Aureliano, Zuzanna Romanowska, Lidia Radko, and Tomasz Męcik-Kronenberg. 2026. "Magnesium and Diabetes: A Review of Recent Studies on the Efficacy of Supplementation with Mg in Humans Suffering from This Chronic Metabolic Disease" International Journal of Molecular Sciences 27, no. 17: 7620. https://doi.org/10.3390/ijms27177620
APA StyleŚcibior, A., Aureliano, M., Romanowska, Z., Radko, L., & Męcik-Kronenberg, T. (2026). Magnesium and Diabetes: A Review of Recent Studies on the Efficacy of Supplementation with Mg in Humans Suffering from This Chronic Metabolic Disease. International Journal of Molecular Sciences, 27(17), 7620. https://doi.org/10.3390/ijms27177620

