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Updated: Feb 7, 2026

Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Nanoparticles as carriers for drug delivery in cancer
Ankita Dadwal1,2, Ashish Baldi2, Raj Kumar Narang1
1a Department of Pharmaceutics , I.S.F. College of Pharmacy , Moga , India.
Abstract:
Cancer nanotherapeutics are swiftly progressing and are being applied to solve several limitations of conventional drug delivery systems such as non-specific biodistribution and targeting, lack of water solubility and poor oral bioavailability. Advances in protein engineering and materials science have contributed to novel nanoscale targeting approaches that may bring new hope to cancer patients. Several therapeutic nanocarriers have been approved for clinical use. Nanoparticles have been designed for optimal size and surface characteristics to improve their biodistribution and to increase their circulation time in the bloodstream. By selectively using the unique pathophysiology of tumours, such as their enhanced permeability and retention effect nanotherapeutics are able to carry loaded active drug to cancer cells. In addition to this passive targeting mechanism, active targeting strategies using ligands or antibodies directed against selected tumour targets magnify the specificity of these therapeutic nanoparticles. Drug resistance, another obstacle can also be overcome or reduced by using nanoparticles. Multifunctional and multiplex nanoparticles are now being actively investigated and are on the horizon as the next generation of nanoparticles, facilitating personalized and tailored cancer treatment.
Insights
Cancer nanotherapeutics overcome conventional drug delivery limits using advanced nanoparticles for targeted delivery. These innovations improve drug efficacy and combat resistance, offering personalized cancer treatment options.
Area of Science:
- Oncology
- Nanotechnology
- Materials Science
Background:
- Conventional cancer drug delivery faces challenges including poor targeting, low solubility, and limited bioavailability.
- Nanotechnology offers solutions by improving drug biodistribution and overcoming resistance mechanisms.
Purpose of the Study:
- To review advancements in cancer nanotherapeutics.
- To highlight nanoparticle design strategies for enhanced cancer treatment.
- To discuss the potential of next-generation nanoparticles for personalized medicine.
Main Methods:
- Nanoparticle design for optimal size and surface characteristics.
- Utilizing the enhanced permeability and retention (EPR) effect for passive tumor targeting.
- Employing active targeting strategies with ligands or antibodies against tumor-specific targets.
Main Results:
- Nanoparticles demonstrate improved biodistribution and prolonged circulation time.
- Both passive (EPR effect) and active targeting strategies enhance specificity.
- Nanoparticles show potential in overcoming multidrug resistance in cancer cells.
Conclusions:
- Cancer nanotherapeutics represent a significant advancement over conventional methods.
- Multifunctional and multiplex nanoparticles are emerging for tailored cancer therapies.
- Nanotechnology holds promise for improving patient outcomes in oncology.
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