Sustained release of MAPK14‐targeting siRNA from polyelectrolyte complex hydrogels mitigates MSC osteogenesis in vitro with potential application in growth plate injury

Author:

Adhikari Bikram1ORCID,Stager Michael A.2,Collins Elise G.2,Fischenich Kristine M.3,Olusoji Jesutomisin1,Ruble Ana Ferreira3,Payne Karin A.3,Krebs Melissa D.12ORCID

Affiliation:

1. Quantitative Biosciences and Bioengineering Colorado School of Mines Golden Colorado USA

2. Chemical and Biological Engineering Colorado School of Mines Golden Colorado USA

3. Department of Orthopedics University of Colorado Anschutz Medical Campus Aurora Colorado USA

Abstract

AbstractThe growth plate is a cartilage structure at the end of long bones which mediates growth in children. When fractured, the formation of bony repair tissue known as a “bony bar” can occur and cause limb deformities. There are currently no effective clinical solutions for the prevention of the bony bar formation or regeneration of healthy growth plate cartilage after a fracture. This study employs previously developed alginate/chitosan polyelectrolyte complex (PEC) hydrogels as a sustained release vehicle for the delivery of short‐interfering RNA (siRNA). Specifically, the siRNA targets the p38‐MAPK pathway in mesenchymal stem cells (MSCs) to prevent their osteogenic differentiation. In vitro experimental findings show sustained release of siRNA from the hydrogels for 6 months. Flow cytometry and confocal imaging indicate that the hydrogels release siRNA to effectively knockdown GFP expression over a sustained period. MAPK‐14 targeting siRNA was used to knockdown the expression of MAPK‐14 and correspondingly decrease the expression of other osteogenic genes in MSCs in vitro over the span of 21 days. These hydrogels were used in a rat model of growth plate injury to determine whether siMAPK‐14 released from the gels could inhibit bony bar formation. No significant reduction of bony bar formation was seen in vivo at the one concentration of siRNA examined. This PEC hydrogel represents a significant advancement for siRNA sustained delivery, and presents an interesting potential therapeutic delivery system for growth plate injuries and other regenerative medicine applications.

Funder

National Institutes of Health

Publisher

Wiley

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