siRNA delivery from cationic nanocarriers prepared by diffusion‐assisted loading in the presence and absence of electrostatic interactions

Author:

Lanier Olivia L.12,D'Andrea Abielle P.23,Shodeinde Aaliyah23,Peppas Nicholas A.12345ORCID

Affiliation:

1. Department of Biomedical Engineering The University of Texas at Austin Austin Texas USA

2. Institute for Biomaterials, Drug Delivery, and Regenerative Medicine The University of Texas at Austin Austin Texas USA

3. McKetta Department of Chemical Engineering The University of Texas at Austin Austin Texas USA

4. Department of Surgery and Perioperative Care, Dell Medical School The University of Texas at Austin Austin Texas USA

5. Department of Pediatrics, Dell Medical School The University of Texas at Austin Austin Texas USA

Abstract

AbstractIn this study, we use modified cationic nanocarriers as vehicles for the intracellular delivery of therapeutic siRNA. After developing nanocarrier formulations with appropriate pKa, size, swellability, and cytocompatibility, we investigated the importance of siRNA loading methods by studying the impact of the pH and time over which siRNA is loaded into the nanocarriers. We concentrate on diffusion‐based loading in the presence and absence of electrostatic interactions. siRNA release kinetics were studied using samples prepared from nanocarriers loaded by both mechanisms. In addition, siRNA delivery was evaluated for two formulations. While previous studies were conducted with samples prepared by siRNA loading at low pH values, this research provides evidence that loading conditions of siRNA affect the release behavior. This study concludes that this concept could prove advantageous for eliciting prolonged intracellular release of nucleic acids and negatively charged molecules, effectively decreasing dose frequency and contributing to more effective therapies and improved patient outcomes. In addition, our findings could be leveraged for enhanced control over siRNA release kinetics, providing novel methods for the continued optimization of cationic nanoparticles in a wide array of RNA interference‐based applications.

Funder

National Institutes of Health

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Surfaces, Coatings and Films,General Chemistry

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