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Predicting Gene Silencing Through the Spatiotemporal Control of siRNA Release from Photo-responsive Polymeric Nanocarriers
Published on: July 21, 2017
Oligonucleotide conjugates - Candidates for gene silencing therapeutics
Matt Gooding1, Meenakshi Malhotra1, James C Evans1
1Pharmacodelivery Group, School of Pharmacy, University College Cork, Cork, Ireland.
Abstract:
The potential therapeutic and diagnostic applications of oligonucleotides (ONs) have attracted great attention in recent years. The capability of ONs to selectively inhibit target genes through antisense and RNA interference mechanisms, without causing un-intended sideeffects has led them to be investigated for various biomedical applications, especially for the treatment of viral diseases and cancer. In recent years, many researchers have focused on enhancing the stability and target specificity of ONs by encapsulating/complexing them with polymers or lipid chains to formulate nanoparticles/nanocomplexes/micelles. Also, chemical modification of nucleic acids has emerged as an alternative to impart stability to ONs against nucleases and other degrading enzymes and proteins found in blood. In addition to chemically modifying the nucleic acids directly, another strategy that has emerged, involves conjugating polymers/peptide/aptamers/antibodies/proteins, preferably to the sense strand (3'end) of siRNAs. Conjugation to the siRNA not only enhances the stability and targeting specificity of the siRNA, but also allows for the development of self-administering siRNA formulations, with a much smaller size than what is usually observed for nanoparticle (∼200nm). This review concentrates mainly on approaches and studies involving ON-conjugates for biomedical applications.
Insights
Oligonucleotides (ONs) show promise for treating diseases like cancer and viral infections. Conjugating ONs, particularly small interfering RNAs (siRNAs), to other molecules enhances their stability and targeting for improved therapeutic applications.
Area of Science:
- Biochemistry
- Molecular Biology
- Nanotechnology
Background:
- Oligonucleotides (ONs) are being explored for therapeutic and diagnostic uses.
- Their gene-silencing capabilities are valuable for treating viral diseases and cancer.
- Challenges include stability and target specificity in biological systems.
Purpose of the Study:
- To review approaches for enhancing oligonucleotide stability and target specificity.
- To focus on oligonucleotide conjugates for biomedical applications.
- To highlight advancements in self-administering siRNA formulations.
Main Methods:
- Encapsulation/complexation of ONs with polymers or lipids into nanoparticles.
- Chemical modification of nucleic acids to increase nuclease resistance.
- Conjugation of polymers, peptides, aptamers, antibodies, or proteins to ONs, especially siRNAs.
Main Results:
- Nanoparticle formulations improve ON stability and specificity.
- Chemical modifications enhance resistance to degradation.
- Conjugation strategies offer improved stability, targeting, and enable smaller, self-administering formulations.
Conclusions:
- Oligonucleotide conjugates represent a promising strategy for advanced therapeutics.
- Conjugation enhances stability, targeting, and delivery of ONs.
- This approach facilitates the development of novel treatments for various diseases.
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