A Comprehensive Review on Diverse Nanoparticle Formulations, Applications and A Concise Review on Nanomedicine in Cancer Therapy
Gespeichert in:
| Titel: | A Comprehensive Review on Diverse Nanoparticle Formulations, Applications and A Concise Review on Nanomedicine in Cancer Therapy |
|---|---|
| Autoren: | Dharmender Guvvali, Dibyalochan Mohanty |
| Quelle: | Current Nanomaterials. 10:383-396 |
| Verlagsinformationen: | Bentham Science Publishers Ltd., 2025. |
| Publikationsjahr: | 2025 |
| Schlagwörter: | 02 engineering and technology, 0210 nano-technology, 01 natural sciences, 3. Good health, 0104 chemical sciences |
| Beschreibung: | The nanoparticle formulation technology is set to play a crucial role in the upcoming years, significantly shaping the pharmaceuticals market, nanomedicine domain, and healthcare systems. The success of employing nano crystallization strategies in industrial settings relies primarily on the technique's capacity to create active pharmaceutical ingredient nanoparticles with precise particle size, limited size variation, stability, consistency, large-scale feasibility, compatibility, and cost-effectiveness. Using nano-particles as a technological advancement has allowed for notable enhancements in various aspects. These include the substantial extension of product shelf lives, augmentation of intracellular delivery for hydrophobic molecules, and the optimization of specific therapeutics like anticancer agents, along with others. As the importance of Nano formulations emerges in the market, nanotechnology has transformed also in the field of cancer diagnosis and treatment. Nanoparticles, ranging from 1 to 100 nm in size, offer unique advantages, including biocompatibility, decreased toxicity, improved stability, enhanced permeability and retention, and precise targeting, making them an effective option for cancer therapy. This comprehensive review article delves into the various categories of nano-formulations. A brief discussion on Nano medicine in Cancer therapy and different formulation strategies meticulously examining their farreaching influence on both the pharmaceutical industry as well as research centers dedicated to Nano formulations. |
| Publikationsart: | Article |
| Sprache: | English |
| ISSN: | 2405-4615 |
| DOI: | 10.2174/0124054615310532240813070242 |
| Dokumentencode: | edsair.doi...........e2d8ef8e760e2399bdacb9b15fe51ae9 |
| Datenbank: | OpenAIRE |
| Abstract: | The nanoparticle formulation technology is set to play a crucial role in the upcoming years, significantly shaping the pharmaceuticals market, nanomedicine domain, and healthcare systems. The success of employing nano crystallization strategies in industrial settings relies primarily on the technique's capacity to create active pharmaceutical ingredient nanoparticles with precise particle size, limited size variation, stability, consistency, large-scale feasibility, compatibility, and cost-effectiveness. Using nano-particles as a technological advancement has allowed for notable enhancements in various aspects. These include the substantial extension of product shelf lives, augmentation of intracellular delivery for hydrophobic molecules, and the optimization of specific therapeutics like anticancer agents, along with others. As the importance of Nano formulations emerges in the market, nanotechnology has transformed also in the field of cancer diagnosis and treatment. Nanoparticles, ranging from 1 to 100 nm in size, offer unique advantages, including biocompatibility, decreased toxicity, improved stability, enhanced permeability and retention, and precise targeting, making them an effective option for cancer therapy. This comprehensive review article delves into the various categories of nano-formulations. A brief discussion on Nano medicine in Cancer therapy and different formulation strategies meticulously examining their farreaching influence on both the pharmaceutical industry as well as research centers dedicated to Nano formulations. |
|---|---|
| ISSN: | 24054615 |
| DOI: | 10.2174/0124054615310532240813070242 |
Nájsť tento článok vo Web of Science