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Published on: February 28, 2025
Protease-Resistant Growth Factor Formulations for the Healing of Chronic Wounds
Tabitha Boeringer1, Lisa J Gould2, Piyush Koria1
1Department of Chemical and Biomedical Engineering, University of South Florida, Tampa, Florida, USA.
Abstract:
Objective: Chronic wounds are long-term nonhealing wounds that are refractory to treatment. These wounds can present elevated protease levels, leading to rapid degradation of native and exogenously added growth factors. This work focused on developing a protease-resistant growth factor formulation for treatment of chronic wounds presented with high protease activity. Approach: This study developed protease-resistant growth factor formulations comprising elastin-like peptides (ELPs) fused with a known protease inhibitor peptide or growth factor. The ELP component of the fusion proteins allows assembly of heterogeneous nanoparticles (NPs) putting the inhibitor in close proximity to the growth factor to be protected. Results: We show successful preservation of growth factor activity in high human neutrophil elastase (HNE) environment and in human chronic wound fluid derived from patients. We further show that these NPs result in enhanced collagen remodeling and resolution of inflammation in a full thickness wound supplemented with HNE in genetically diabetic mice. Innovation: Development of heterogeneous NPs that put the protease inhibitor in close proximity of the growth factor. Moreover, the modular nature of the NPs allows for protection of multiple growth factors by the same inhibitor without changing the amino acid sequence of the growth factor. Conclusion: Our results indicate that the developed NPs hold tremendous promise in chronic wound healing therapy and may further help the translation of growth factor therapies to clinic. The customizable template for the NP design allows for multifaceted use across several fields in research and medicine.
Insights
This study developed novel nanoparticles to protect growth factors from degradation in chronic wounds. These engineered nanoparticles enhance wound healing by preserving growth factor activity and reducing inflammation.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Wound Healing
Background:
- Chronic wounds exhibit high protease activity, degrading essential growth factors and hindering healing.
- Current treatments struggle to maintain growth factor efficacy in protease-rich wound environments.
Purpose of the Study:
- To develop a protease-resistant growth factor formulation for chronic wound treatment.
- To create nanoparticles that protect growth factors from degradation by proteases.
Main Methods:
- Engineered fusion proteins combining elastin-like peptides (ELPs) with protease inhibitors or growth factors.
- Assembled heterogeneous nanoparticles (NPs) where inhibitors are localized near growth factors.
- Tested NP efficacy in vitro using human neutrophil elastase (HNE) and chronic wound fluid.
- Evaluated NP performance in a full-thickness wound model in diabetic mice.
Main Results:
- Demonstrated successful preservation of growth factor activity in HNE and human wound fluid.
- Observed enhanced collagen remodeling and reduced inflammation in a mouse wound model.
- Validated the protective effect of NPs against protease degradation.
Conclusions:
- Developed heterogeneous NPs effectively protect growth factors in protease-rich environments.
- These NPs show significant promise for advancing chronic wound healing therapies.
- The modular NP design offers versatile applications in research and medicine.
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