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Updated: Sep 9, 2025

Bacterial Delivery of RNAi Effectors: Transkingdom RNAi
Published on: August 18, 2010
RNAi delivery mediated by milk extracellular vesicles in colon cancer
Jessie Santoro1, Silvia Nuzzo1, Andrea Soricelli1,2
1IRCCS SYNLAB SDN, Via E. Gianturco 113, 80143 Napoli, Italy.
Abstract:
Small interfering RNA (siRNA) has emerged as a powerful tool for gene silencing, offering great potential for therapeutic applications. However, the clinical use of siRNA is limited by several challenges, including poor stability in biological fluids, off-target effects, and toxicity due to non-specific cellular uptake. To address these limitations, extracellular vesicles (EVs) derived from milk are being investigated as natural carriers to deliver siRNA and microRNA. These EVs offer advantages such as low immunogenicity, biocompatibility, and the ability to cross biological barriers. Here, we optimized methods for loading siRNA into milk-derived EVs (mEVS) and assessed their ability to protect siRNA from degradation while preserving its gene-silencing efficacy. We targeted a potential biomarker, Aurora kinase A (AURKA), known to be deregulated in many types of solid tumors, including colon cancer. Our results demonstrate that mEVs-loaded siRNA retains the stability and functionality of internalized siRNA, leading to efficient gene silencing in target cells. This approach highlights the potential of mEVs as a safe and valuable delivery system, overcoming key limitations of siRNA therapeutics and opening new avenues and opening new avenues for diagnostic and therapeutic strategies in colon cancer.
Insights
Milk-derived extracellular vesicles (mEVs) effectively deliver small interfering RNA (siRNA) for gene silencing. This approach enhances siRNA stability and therapeutic potential, particularly for targeting Aurora kinase A in colon cancer.
Area of Science:
- Biotechnology
- Molecular Biology
- Cancer Research
Background:
- Small interfering RNA (siRNA) is a promising gene-silencing tool but faces challenges like instability and off-target effects.
- Extracellular vesicles (EVs) from milk show potential as natural carriers for nucleic acid delivery due to low immunogenicity and biocompatibility.
Purpose of the Study:
- To optimize siRNA loading into milk-derived EVs (mEVs).
- To evaluate the stability and gene-silencing efficacy of siRNA delivered by mEVs.
- To assess mEVs as a therapeutic delivery system for Aurora kinase A (AURKA) in colon cancer.
Main Methods:
- Optimized methods for loading siRNA into milk-derived EVs.
- Assessed siRNA stability within mEVs against degradation.
- Evaluated gene-silencing efficacy of mEVs-loaded siRNA targeting AURKA in colon cancer cells.
Main Results:
- Successfully loaded siRNA into milk-derived EVs (mEVs).
- mEVs protected siRNA from degradation, maintaining its functional integrity.
- Achieved efficient gene silencing of AURKA in target colon cancer cells.
Conclusions:
- Milk-derived EVs are a safe and effective delivery system for siRNA therapeutics.
- This approach overcomes key limitations of traditional siRNA delivery.
- mEVs offer new diagnostic and therapeutic strategies for colon cancer and other solid tumors.
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