Development of a Static Avascular and Dynamic Vascular Human Skin Equivalent Employing Collagen/Keratin Hydrogels

Author:

Zuniga Kameel12ORCID,Ghousifam Neda3,Shaffer Lucy2,Brocklehurst Sean1ORCID,Van Dyke Mark4,Christy Robert5,Natesan Shanmugasundaram6ORCID,Rylander Marissa Nichole13

Affiliation:

1. Department of Biomedical Engineering, The University of Texas at Austin, Austin, TX 78712, USA

2. 59th Medical Wing Science and Technology, JBSA-Lackland, TX 78236, USA

3. Department of Mechanical Engineering, The University of Texas at Austin, Austin, TX 78712, USA

4. Department of Biomedical Engineering, The University of Arizona, Tucson, AZ 85712, USA

5. Military Health Institute, University of Texas Health San Antonio, San Antonio, TX 78229, USA

6. Extremity Trauma and Amputation Center of Excellence (EACE), Defense Health Agency, San Diego, CA 92134, USA

Abstract

One of the primary complications in generating physiologically representative skin tissue is the inability to integrate vasculature into the system, which has been shown to promote the proliferation of basal keratinocytes and consequent keratinocyte differentiation, and is necessary for mimicking representative barrier function in the skin and physiological transport properties. We created a 3D vascularized human skin equivalent (VHSE) with a dermal and epidermal layer, and compared keratinocyte differentiation (immunomarker staining), epidermal thickness (H&E staining), and barrier function (transepithelial electrical resistance (TEER) and dextran permeability) to a static, organotypic avascular HSE (AHSE). The VHSE had a significantly thicker epidermal layer and increased resistance, both an indication of increased barrier function, compared to the AHSE. The inclusion of keratin in our collagen hydrogel extracellular matrix (ECM) increased keratinocyte differentiation and barrier function, indicated by greater resistance and decreased permeability. Surprisingly, however, endothelial cells grown in a collagen/keratin extracellular environment showed increased cell growth and decreased vascular permeability, indicating a more confluent and tighter vessel compared to those grown in a pure collagen environment. The development of a novel VHSE, which incorporated physiological vasculature and a unique collagen/keratin ECM, improved barrier function, vessel development, and skin structure compared to a static AHSE model.

Funder

National Institutes of Health

Cancer Prevention & Research Institute of Texas

Battelle Institute

Inflammatory Breast Cancer Network Foundation

Publisher

MDPI AG

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