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Published on: April 16, 2019
Modified pullulan unlocks efficient polyplex-mediated gene silencing following nebulization
Sofia Bonsignore1, Salvatore Emanuele Drago1, Cinzia Scialabba1
1Lab of Biocompatible Polymers, Department of Biological, Chemical and Pharmaceutical Sciences and Technologies (STEBICEF), University of Palermo, Via Archirafi 32, Palermo, 90123, Italy.
Engineered pullulan copolymers effectively deliver siRNA to the lungs. Modified pullulan carriers show high cytocompatibility, enhanced cellular uptake, and efficient gene silencing for pulmonary siRNA delivery.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Gene Therapy
Background:
- Pullulan (PULL) is a natural polymer with potential for pulmonary siRNA delivery.
- Tailoring PULL's molecular weight and functionalization is key to optimizing its carrier properties.
Purpose of the Study:
- To engineer pullulan-based amphiphilic copolymers for inhalable siRNA delivery.
- To evaluate the physicochemical properties, aerosol performance, and biological efficacy of these novel carriers.
Main Methods:
- Controlled acidic hydrolysis to reduce PULL molecular weight.
- Functionalization of PULL with 1,2-bis(3-aminopropylamino)ethane (bAPAE) and all-trans-retinoic acid (Ret).
- Characterization of polyplexes, nebulization, aerodynamic assessment, and in vitro gene silencing studies.
Main Results:
- Successfully synthesized PULL-bAPAE-Ret amphiphilic copolymers with suitable buffering capacity and self-assembly behavior.
- Achieved efficient siRNA complexation, controlled release, and RNase protection.
- Nebulization demonstrated excellent recovery (>90%) and suitable aerodynamic properties (~2 μm MMAD, >80% FPF) for deep lung deposition.
- In vitro studies showed high cytocompatibility, enhanced cellular uptake, improved endosomal escape, and superior gene silencing efficiency (~38% luciferase reduction).
Conclusions:
- Rationally engineered pullulan-amphiphilic copolymers are promising inhalable carriers for siRNA delivery.
- These formulations combine tunable physicochemical properties with significant biological efficacy for pulmonary gene silencing.
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