Green Nanotechnology: Advancement in Phytoformulation Research
Abstract
:1. Introduction
2. Herbal Approach for Developing Nanoparticles
3. Nanoparticles Synthesized from Plant Extracts
3.1. Gold and Silver Nanoparticles
3.2. Copper and Copper Oxide Nanoparticles
3.3. Palladium and Platinium Nanoparticles
3.4. Titanium Dioxide and Zinc Oxide Nanoparticles
3.5. Indium Oxide (In2O3), Iron Oxide, Lead, and Selenium Nanoparticles
4. Green Synthesis of Metal Nanoparticles
5. Green Nanotechnology: Risk Aspects
6. Risk Assessment
7. Risk Management
8. Risk Communication
9. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Formulation | Active Ingredients | Biological Activity | Method of Preparation | References |
---|---|---|---|---|
Curcuminoids solid lipid nanoparticles | Curcuminoids | Anticancer and antioxidant | Micro-emulsion technique | [8] |
Glycyrrhizic acid loaded nanoparticles | Glycyrrhizin acid | Antihypertensive and anti-inflammatory | Rotary-evaporated film ultrasonication method | [9] |
Nanoparticles of cuscuta chinensis | Flavonoids and lignans | Hepatoprotective and antioxidant effects | Nanosuspension method | [10] |
Artemisinin nanocapsules | Artemisinin | Anticancer | Self-assembly procedure | [11] |
Berberine-loaded nanoparticles | Berberine | Anticancer | Ionic gelation method | [12] |
CPTencapsulated nanoparticles | Camptothecin | Anticancer | Dialysis method | [13] |
Taxel-loaded nanoparticles | Taxel | Anticancer | Emulsion solvent evaporation | [14] |
Plant | Nanoparticle | Size (nm) | Shape | Reference |
---|---|---|---|---|
Aloe vera | Au & Ag | 50 to 350 | Spherical, triangular | [18] |
Aloe vera | In2O3 | 5 to 50 | Spherical | [19] |
Citrullus colocynthis | Ag | 31 | Spherical | [20] |
Curcuma longa | Pd | 10 to 15 | Spherical | [21] |
Diopyros kaki | Pt | 15 to 19 | Crystalline | [22] |
Eucalyptus macrocarpa | Au | 20 to 100 | Spherical, triangular, hexagonal | [23] |
Mangifera indica | Ag | 20 | Spherical, triangular, hexagonal | [24] |
Rhododendron dauricum | Ag | 25 to 40 | Spherical | [25] |
Psidium guajava | Au | 25 to 30 | Spherical | [26] |
Pyrus sp. (Pear fruit extract) | Au | 200 to 500 | Triangular, hexagonal | [27] |
Terminalia catappa | Au | 10 to 35 | Spherical | [28] |
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Verma, A.; Gautam, S.P.; Bansal, K.K.; Prabhakar, N.; Rosenholm, J.M. Green Nanotechnology: Advancement in Phytoformulation Research. Medicines 2019, 6, 39. https://doi.org/10.3390/medicines6010039
Verma A, Gautam SP, Bansal KK, Prabhakar N, Rosenholm JM. Green Nanotechnology: Advancement in Phytoformulation Research. Medicines. 2019; 6(1):39. https://doi.org/10.3390/medicines6010039
Chicago/Turabian StyleVerma, Ajay, Surya P. Gautam, Kuldeep K. Bansal, Neeraj Prabhakar, and Jessica M. Rosenholm. 2019. "Green Nanotechnology: Advancement in Phytoformulation Research" Medicines 6, no. 1: 39. https://doi.org/10.3390/medicines6010039
APA StyleVerma, A., Gautam, S. P., Bansal, K. K., Prabhakar, N., & Rosenholm, J. M. (2019). Green Nanotechnology: Advancement in Phytoformulation Research. Medicines, 6(1), 39. https://doi.org/10.3390/medicines6010039