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Preparation of Neutrally-charged, pH-responsive Polymeric Nanoparticles for Cytosolic siRNA Delivery
Published on: May 2, 2019
Favorable biodistribution, specific targeting and conditional endosomal escape of RNA nanoparticles in cancer therapy
Congcong Xu1, Farzin Haque2, Daniel L Jasinski1
1Division of Pharmaceutics and Pharmaceutical Chemistry, College of Pharmacy, The Ohio State University, Columbus, OH, USA; College of Medicine, Dorothy M. Davis Heart and Lung Research Institute, The Ohio State University, Columbus, OH, USA; Comprehensive Cancer Center, The Ohio State University, Columbus, OH, USA; Center for RNA Nanobiotechnology and Nanomedicine, The Ohio State University, Columbus, OH, USA.
Abstract:
The past decades have witnessed the successful transition of several nanotechnology platforms into the clinical trials. However, specific delivery of therapeutics to tumors is hindered by several barriers including cancer recognition and tissue penetration, particle heterogeneity and aggregation, and unfavorable pharmacokinetic profiles such as fast clearance and organ accumulation. With the advent of RNA nanotechnology, a series of RNA nanoparticles have been successfully constructed to overcome many of the aforementioned challenges for in vivo cancer targeting with favorable biodistribution profiles. Compared to other nanodelivery platforms, the physiochemical properties of RNA nanoparticles can be tuned with relative ease for investigating the in vivo behavior of nanoparticles upon systemic injection. The size, shape, and surface chemistry, especially hydrophobic modifications, exert significant impacts on the in vivo fate of RNA nanoparticles. Rationally designed RNA nanoparticles with defined stoichiometry and high homogeneity have been demonstrated to specifically target tumor cells while avoiding accumulation in healthy vital organs after systemic injection. RNA nanoparticles were proven to deliver therapeutics such as siRNA and anti-miRNA to block tumor growth in several animal models. Although the release of anti-miRNA from the RNA nanoparticles has achieved high efficiency of tumor regression in multiple animal models, the efficiency of endosomal escape for siRNA delivery needs further improvement. This review focuses on the advances and perspectives of this promising RNA nanotechnology platform for cancer targeting and therapy.
Insights
RNA nanotechnology offers a promising platform for cancer therapy by overcoming delivery barriers. RNA nanoparticles demonstrate effective in vivo tumor targeting and therapeutic delivery, with ongoing research to enhance siRNA endosomal escape.
Area of Science:
- Biotechnology and Nanomedicine
- Cancer Therapeutics
- Drug Delivery Systems
Background:
- Nanotechnology platforms have entered clinical trials, but challenges remain in targeted cancer therapy.
- Barriers include poor tumor recognition, tissue penetration, particle aggregation, and unfavorable pharmacokinetics.
- RNA nanotechnology presents a novel approach to address these limitations in cancer targeting.
Purpose of the Study:
- To review advances in RNA nanotechnology for in vivo cancer targeting and therapy.
- To highlight the advantages of RNA nanoparticles over other nanodelivery platforms.
- To discuss the impact of physiochemical properties on nanoparticle behavior and therapeutic efficacy.
Main Methods:
- Construction and characterization of RNA nanoparticles with tunable physiochemical properties (size, shape, surface chemistry).
- Investigation of in vivo behavior, biodistribution, and tumor targeting following systemic injection.
- Evaluation of therapeutic delivery using RNA nanoparticles carrying siRNA and anti-miRNA in preclinical cancer models.
Main Results:
- RNA nanoparticles exhibit favorable biodistribution, targeting tumors while avoiding healthy organs.
- Defined stoichiometry and homogeneity enhance specific tumor cell targeting.
- Anti-miRNA delivery achieved high tumor regression efficiency; siRNA delivery requires improved endosomal escape.
Conclusions:
- RNA nanotechnology is a powerful platform for developing targeted cancer therapies.
- Rational design of RNA nanoparticles optimizes in vivo performance and therapeutic outcomes.
- Further improvements in endosomal escape are crucial for maximizing siRNA-based RNA nanoparticle efficacy.
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