Formulation of More Efficacious Curcumin Delivery Systems Using Colloid Science: Enhanced Solubility, Stability, and Bioavailability
Abstract
:1. Introduction
2. Chemistry of Curcumin
3. Biological Activities of Curcumin
3.1. Antioxidant Activity
3.2. Anti-Inflammatory Activity
3.3. Antimicrobial Effects
3.4. Anticancer
4. Potential Toxicity
5. Factors Affecting Curcumin’s Application
5.1. Solubility
5.2. pH-Induced Color Changes
5.3. Chemical Degradation
5.3.1. Alkaline Degradation
5.3.2. Photodegradation
5.3.3. Autoxidation
5.4. Bioavailability
5.4.1. Bioaccessibility, Chemical Transformation, and Absorption
5.4.2. Metabolism
5.4.3. Tissue Distribution
5.4.4. Elimination
5.4.5. Pharmacokinetics
6. Strategies to Overcome the Challenges of Curcumin
6.1. Methods to Enhance Solubility/Dispersibility of Curcumin
6.1.1. Direct Dissolution
6.1.2. Mechanical Action
6.1.3. Heating
6.1.4. Encapsulation Technologies
6.2. Methods to Enhance Stability of Curcumin
6.2.1. Antioxidant Technologies
6.2.2. Encapsulation Technologies
6.2.3. Controlling Environmental Conditions
6.3. Methods to Enhance the Bioavailability of Curcumin
7. Colloidal Delivery Systems
7.1. Micelles
7.2. Liposomes
7.3. Microemulsions
7.4. Nanoemulsions and Emulsions
7.5. Solid Lipid Particles
7.6. Biopolymer Particles
7.7. Nature-Derived Colloidal Particles
8. Conclusions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
C4-2B | C4-2 Bone metastatic |
E. coli | Escherichia coli |
E. faecalis | Enterococcus faecalis |
HCT 116 | Human Colorectal Carcinoma cell lines |
IL | Interleukin |
LNCaP | Lymph Node Carcinoma of the Prostate |
NFkB | Nuclear Factor Kappa B |
P. aeruginosa | Pseudomonas aeruginosa |
Rko | Rectal carcinoma cell line |
S. autrus | Staphylococcus aureus |
TNF-a | Tumor Necrosis Factor Alpha |
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Zheng, B.; McClements, D.J. Formulation of More Efficacious Curcumin Delivery Systems Using Colloid Science: Enhanced Solubility, Stability, and Bioavailability. Molecules 2020, 25, 2791. https://doi.org/10.3390/molecules25122791
Zheng B, McClements DJ. Formulation of More Efficacious Curcumin Delivery Systems Using Colloid Science: Enhanced Solubility, Stability, and Bioavailability. Molecules. 2020; 25(12):2791. https://doi.org/10.3390/molecules25122791
Chicago/Turabian StyleZheng, Bingjing, and David Julian McClements. 2020. "Formulation of More Efficacious Curcumin Delivery Systems Using Colloid Science: Enhanced Solubility, Stability, and Bioavailability" Molecules 25, no. 12: 2791. https://doi.org/10.3390/molecules25122791