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Updated: Jul 7, 2026

Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Therapeutic nanoparticles for drug delivery in cancer
Kwangjae Cho1, Xu Wang, Shuming Nie
1Department of Hematology and Oncology, Winship Cancer Institute, Emory University School of Medicine, Atlanta, Georgia 30322, USA.
Abstract:
Cancer nanotherapeutics are rapidly progressing and are being implemented to solve several limitations of conventional drug delivery systems such as nonspecific biodistribution and targeting, lack of water solubility, poor oral bioavailability, and low therapeutic indices. To improve the biodistribution of cancer drugs, nanoparticles have been designed for optimal size and surface characteristics to increase their circulation time in the bloodstream. They are also able to carry their loaded active drugs to cancer cells by selectively using the unique pathophysiology of tumors, such as their enhanced permeability and retention effect and the tumor microenvironment. In addition to this passive targeting mechanism, active targeting strategies using ligands or antibodies directed against selected tumor targets amplify the specificity of these therapeutic nanoparticles. Drug resistance, another obstacle that impedes the efficacy of both molecularly targeted and conventional chemotherapeutic agents, might also be overcome, or at least reduced, using nanoparticles. Nanoparticles have the ability to accumulate in cells without being recognized by P-glycoprotein, one of the main mediators of multidrug resistance, resulting in the increased intracellular concentration of drugs. 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 limitations using nanoparticles for improved targeting and overcoming drug resistance. These advancements promise more personalized and effective cancer treatments.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Conventional cancer drugs face limitations like poor targeting, low solubility, and drug resistance.
- Nanoparticles offer solutions by improving drug biodistribution and overcoming resistance mechanisms.
Purpose of the Study:
- To review the advancements and applications of cancer nanotherapeutics.
- To highlight how nanoparticles address challenges in conventional cancer drug delivery.
Main Methods:
- Nanoparticles are engineered for optimal size and surface properties to enhance circulation time.
- Passive targeting utilizes the enhanced permeability and retention (EPR) effect and tumor microenvironment.
- Active targeting employs ligands or antibodies for specific tumor cell recognition.
Main Results:
- Nanoparticles improve drug biodistribution and enhance circulation time.
- Both passive and active targeting strategies increase specificity for cancer cells.
- Nanoparticles can overcome multidrug resistance by evading efflux pumps like P-glycoprotein.
Conclusions:
- Cancer nanotherapeutics represent a significant advancement over conventional delivery systems.
- Nanoparticles offer improved efficacy, targeting, and resistance circumvention in cancer treatment.
- Future directions include multifunctional and multiplex nanoparticles for personalized cancer therapy.
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