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April 21, 2026Wound Repair and Regeneration0 citationsOpen Access

Enhanced Early Vascularization and Tissue Formation in a Biphasic Collagen Hydrogel Dermal Regeneration Template

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DLDerek LuongRCRachael CohenAWAdam Weisel

Key Points

  • The research aims to evaluate the effectiveness of a biphasic collagen hydrogel dermal regeneration template in enhancing skin repair.
  • Developed a biphasic collagen hydrogel dermal regeneration template called DermiSphere h DRT.
  • Utilized a swine model to assess host response and vascular invasion into the template.
  • Conducted quantitative histological analysis to measure cellular and vascular infiltration over several postoperative days.
  • By Day 3, h DRT showed full integration with the wound bed, in contrast to minimal adhesion of the market-leading DRT.
  • On Day 7, h DRT produced thicker neodermal tissue with extensive vascular networks, indicating faster healing.
  • By Day 10, h DRT demonstrated organized collagen remodelling and significant vessel growth, unlike MLT.

Abstract

ABSTRACT Reconstruction of full‐thickness wounds remains a major clinical challenge. Full‐thickness skin grafts (FTSG) are considered an ideal reconstructive option as they reconstitute both epidermal and dermal layers of skin; however, their use is limited by donor site availability and potential donor site morbidity. Dermal regeneration templates (DRTs) were introduced decades ago to reduce dermal harvesting needs and promote formation of a ‘neodermal’ layer, improving both functional and cosmetic outcomes. However, current DRTs are limited by slow vascularization, typically requiring 2–4 weeks for integration. To address these limitations, we developed DermiSphere h DRT, a hydrogel dermal regeneration template, a biphasic collagen‐based matrix combining a type I collagen hydrogel with densely packed collagen microspheres. The resulting differential‐density interfaces generate a gradient microstructure that supports efficient cellular infiltration and neovascularization. Using a swine model, we evaluated early host response and vascular invasion into h DRT without an overlying graft. By Postoperative Day (POD) 3, h DRT was fully integrated with the wound bed and resistant to manual shear, whereas the market‐leading DRT (MLT) showed minimal adherence. Quantitative histology revealed significantly greater cellular and endothelial invasion in h DRT, with CD31+ vascular channels penetrating nearly halfway through the construct. By POD 7, h DRT generated thicker neodermal tissue with extensive vascular networks extending into new granulation tissue. By POD 10, h DRT exhibited organised collagen remodelling and interconnected vertical and horizontal vessel growth, while MLT remained incompletely incorporated. These results demonstrate that h DRT's unique microarchitecture accelerates cellular infiltration and neovascularization, enabling faster, more reliable formation of a vascularized neodermal layer for full‐thickness skin repair.

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Cite This Study

Luong et al. (2026) studied this question.

synapsesocial.com/papers/69e71423cb99343efc98d8c0https://doi.org/10.1111/wrr.70152
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