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Updated: Aug 20, 2025

Manufacture and Drug Delivery Applications of Silk Nanoparticles
Published on: October 8, 2016
Engineered nanoparticles as emerging gene/drug delivery systems targeting the nuclear factor-κB protein and related
Ramin Eskandani1, Mohammad Kazempour2, Raheleh Farahzadi3
1Physics Department, Iran University of Science and Technology, Tehran, Iran.
Abstract:
The transcription factor nuclear factor-κB (NF-κB) is a critical regulator of the immune response, inflammation, cell growth, and survival. Canonical and non-canonical pathways, two NF-κB pathways, are activated through diverse stimulators and receptors. NF-κB activity is dysregulated in various inflammation-related diseases and cancers. It was found that the persistent NF-κB activity has a major role in proliferation, apoptosis inhibition, metastasis, and cell cycle disruption in cancer cells and also the survival of cancer stem cells (CSCs) within the tumors. Therefore, suppression of the NF-κB pathway could be a promising therapeutic target for cancer therapy. Different biological inhibitors (e.g., peptides, small molecules, antisense oligonucleotides (ASOs), and antibodies (Abs)) have been demonstrated to inhibit the NF-κB pathway. Low stability in the circulation system, weak availability, and poor cellular uptake of some inhibitors limit their therapeutic applications. To address these drawbacks nanocarrier systems are often formulated and applied in drug delivery as an effective therapeutic approach. Targeted nanosystems (i.e., small molecules, peptides, Abs and Aptamers (Aps) conjugated nanocarriers), as well as smart responsive nanocarriers, can improve the efficiency of therapeutics while reducing the off-target toxicity. This review describes the NF-κB signaling pathways and mechanisms of their over-activation in tumor initiation and progression. The NF-κB inhibitors and their clinical applications are also discussed. It also overviews different nanocarriers used as robust vehicles for the delivery of NF-κB inhibitors and anti-tumor agents to improve the bioavailability of drugs and selective targeting of cancer cells to repress NF-κB activity in tumor cells.
Insights
Nuclear factor-κB (NF-κB) is crucial in immunity and cancer. Suppressing NF-κB via nanocarrier-delivered inhibitors offers a promising cancer therapy strategy by enhancing drug delivery and targeting cancer cells.
Area of Science:
- Molecular Biology
- Immunology
- Oncology
Background:
- Nuclear factor-κB (NF-κB) is a key regulator of immune responses, inflammation, cell growth, and survival.
- Dysregulated NF-κB activity is implicated in various diseases, particularly cancer, promoting proliferation, metastasis, and cancer stem cell survival.
- Persistent NF-κB activation is a significant driver of tumor initiation and progression.
Purpose of the Study:
- To review NF-κB signaling pathways and their over-activation mechanisms in cancer.
- To discuss NF-κB inhibitors and their clinical applications.
- To overview nanocarriers for improved delivery of NF-κB inhibitors and anti-cancer agents.
Main Methods:
- Literature review of NF-κB signaling pathways and inhibitors.
- Analysis of nanocarrier systems for drug delivery applications.
- Discussion of targeted and responsive nanocarriers for cancer therapy.
Main Results:
- NF-κB pathway suppression is a potential therapeutic target for cancer.
- Various biological inhibitors (peptides, small molecules, ASOs, Abs) exist but face delivery challenges.
- Nanocarrier systems enhance bioavailability, cellular uptake, and targeted delivery of NF-κB inhibitors, reducing off-target toxicity.
Conclusions:
- Targeted and smart responsive nanocarriers improve the efficacy of NF-κB inhibitors in cancer therapy.
- Nanocarriers offer a robust approach to deliver NF-κB inhibitors and anti-tumor agents selectively to cancer cells.
- Optimizing nanocarrier-based delivery systems holds promise for repressing NF-κB activity and treating cancer effectively.
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