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Updated: Sep 5, 2026

Formulation of Zinc-Based Nanomaterials using the Eucommia ulmoides Bark Extract and their Wound Healing Potential
Published on: December 27, 2024
In Vitro Wound Healing Evaluation of Zinc Particle-Embedded Nanofibrous Scaffolds through Protein Expression
Alexis Moody1, Narayan Bhattarai1,2
1Department of Applied Science and Technology, North Carolina A&T State University, Greensboro, North Carolina27411, USA.
Abstract:
Understanding how the components of bioactive scaffolds regulate coordinated inflammatory and regenerative signaling is critical for the development of advanced wound healing materials. Here, zinc metal particle-embedded polycaprolactone (PZ) electrospun nanofiber scaffolds were evaluated as an immunomodulatory platform that directs protein expression to influence the wound healing process. Scaffolds containing 0, 0.5, and 1 wt % Zn were assessed during fibroblast monoculture, macrophage monoculture, and fibroblast-macrophage coculture models under sustained inflammatory stimulation. Zn incorporation enhanced cell viability and metabolic activity while maintaining low cytotoxicity across all culture systems. Fibroblasts cultured on Zn-containing scaffolds exhibited reduced inflammatory signaling, suppressed COX-2 expression, and increased secretion of proangiogenic and pro-proliferative factors such as EGF, bFGF, and VEGF. Macrophages displayed restrained inflammatory activation, accompanied by elevated growth factor output, consistent with a pro-healing phenotype. Coculture studies revealed that Zn scaffolds selectively dampened inflammatory amplification while preserving cooperative angiogenic signaling, evidenced by reduced IL-6 and COX-2 expression. Altogether, these results establish Zn-embedded PCL scaffolds as a tunable platform for directing inflammatory and regenerative signaling relevant to wound healing applications.

