How Curcumin Targets Inflammatory Mediators in Diabetes: Therapeutic Insights and Possible Solutions
Abstract
:1. Introduction
2. Inflammation in Diabetes
3. Therapeutic Potential of Curcumin: An Overview
3.1. Curcumin in Diabetes
3.2. Influence of Curcumin on Inflammatory Mediators
3.3. Role of Curcumin Targeting Inflammation in Diabetes Resistance
3.4. Nano-Curcumin Targeting Inflammatory Mediators
3.5. Clinical Studies
4. Conclusions and Future Perspectives
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Sample Availability
Abbreviations
References
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Cancer Type | Mechanistic Pathway | Effects | References |
---|---|---|---|
Myelogenous leukemia | modulation of the PTEN/AKT via mediation of miR-21 | Tumor suppression | [62] |
Gastric cancer | Bax up-regulation, Bcl-2 down-regulation, PAK1 inhibition, cell cycle arrest at G2/M phase | Cell apoptosis, proliferation suppression and invasion | [63,64] |
Colorectal cancer | Bcl-2, ROS, JNK | Apoptosis survival reduction | [65] |
Hepatic cancer | MAPK, ERK1/2, ERK5 | Regulation of epithelial to mesenchymal transition | [66] |
Brain tumor | PI3K/Akt, NF-κB, Bcl-xL | Mitochondrial dysfunction | [67] |
STZ-Induced Diabetic Nephropathy in Rat | |||
---|---|---|---|
Dose Used | Assays | Effects | Reference |
Curcumin (100 mg/kg and Gliclazide (10 mg/kg, orally) | Tail flick and tail pinch tests, Hot plate, peroxynitrite, C-peptide, TNF-α levels, lipid peroxides. | Improvement in sensory motor deficits, increased c-peptide levels and decreased peroxynitrite, lipid peroxides and TNF-α levels | [114] |
Apocyanin (2.5 mg/kg), i.p and Curcumin intragastric administration (200 mg/kg) | Expression of NADPH oxidase, Hydrogen peroxide, Paw withdrawal threshold, SOD levels and MDA in spinal cord. | Improved expression of p47phox and gp91phox of NADPH oxidase. Paw withdrawal threshold improved. MDA, H2O2 levels decreased and SOD levels augmented | [115] |
Curcumin (60 mg/kg; p.o.) | NO and TNF-α in brain homogenate, Tail immersion and hot plate assay | Reduce in nitrite and TNF-α levels, decline in tail withdrawal reflex and paw licking. | [116] |
Curcumin (15–30 mg/kg, p.o. for 2 weeks) | BUN, Creatinine, urinary albumin excretion, renal malondialdehyde urea clearance, SOD, catalase & glutathione levels. | Improved urea and creatinine clearance. Augmented antioxidant enzymes and abridged MDA level | [117] |
Curcumin (100 mg/kg/day, p.o. for 8 weeks) | p-AMPKα (Thr 172), Expression of SREBP-1c, AMPKα, vascular endothelial growth factor (VEGF) and adipose differentiation-related protein (ADRP) and Immunofluorescence for type IV collagen and FN | Prohibited expression of SREBP-1c and decreased expression of acetyl CoA carboxylase, fatty acid synthase and ADRP Amplified phosphorylation of AMPK, suppressed expression of ECM, VEGF and TGF β proteins, such as type IV collagen and FN | [118] |
Curcumin (50 mg/kg/day for 6 weeks) | BUN, Albumin and creatinine, Superoxide dismutase, lipid peroxide levels. Western blot analysis of HSP-27, H3, p38 | Reduced BUN and creatinine and improved albumin. Decreased MDA and enhanced SOD level. Reduced p38 and HSP-27 expression, decrease in dephosphorylation and increased acetylation of histone H3 | [119] |
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Hussain, Y.; Khan, H.; Alotaibi, G.; Khan, F.; Alam, W.; Aschner, M.; Jeandet, P.; Saso, L. How Curcumin Targets Inflammatory Mediators in Diabetes: Therapeutic Insights and Possible Solutions. Molecules 2022, 27, 4058. https://doi.org/10.3390/molecules27134058
Hussain Y, Khan H, Alotaibi G, Khan F, Alam W, Aschner M, Jeandet P, Saso L. How Curcumin Targets Inflammatory Mediators in Diabetes: Therapeutic Insights and Possible Solutions. Molecules. 2022; 27(13):4058. https://doi.org/10.3390/molecules27134058
Chicago/Turabian StyleHussain, Yaseen, Haroon Khan, Ghallab Alotaibi, Fazlullah Khan, Waqas Alam, Michael Aschner, Philippe Jeandet, and Luciano Saso. 2022. "How Curcumin Targets Inflammatory Mediators in Diabetes: Therapeutic Insights and Possible Solutions" Molecules 27, no. 13: 4058. https://doi.org/10.3390/molecules27134058
APA StyleHussain, Y., Khan, H., Alotaibi, G., Khan, F., Alam, W., Aschner, M., Jeandet, P., & Saso, L. (2022). How Curcumin Targets Inflammatory Mediators in Diabetes: Therapeutic Insights and Possible Solutions. Molecules, 27(13), 4058. https://doi.org/10.3390/molecules27134058