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Bajrami, D.

Publications and source records attributed to Bajrami, D..

2 recordsLinked to original sources

A Modular Bio-Hybrid Skin Model for Optical Testing Applications

Synthetic optical skin models offer reproducible, tunable optical properties but lack biological responsiveness, while tissue engineered skin models provide cellular authenticity but suffer from optical variability and limited controllability. The growing demand for alternatives to animal models in the development and validation of optical biomedical technologies highlights the need for a new class of test system that combines the strengths of both approaches while addressing their respective limitations. Here, we introduce the concept of a modular biohybrid skin model, a new testing concept that integrates an optically defined artificial epidermal layer, incorporating polydopamine nanoparticles for changes in skin tone, with living human keratinocytes in two and three-dimensional configurations. In the Optical Protection Model, UV-B-induced apoptosis in primary keratinocytes is quantitatively modulated by model pigmentation level, demonstrating a relationship between optical attenuation and caspase 3/7 activity across three artificial skin tone conditions. In a Structured Dermal Model, keratinocytes seeded onto a hydrogel scaffold localize within follicle-like microcavities, as confirmed by live/dead staining and confocal z-stack imaging. Together, these experiments lead to a new category of test system in the space between inert optical models and variable tissue models that may contribute to reducing the reliance on animal models in biomedical optics.

bioengineering↗

Enabling Hydrogel Coating on Silicone Breast Implants with Poly(Vinyl Acetate) Primer Layer

Implant-associated infection is a major cause for breast implant re-operation. A practical method to reduce this risk is yet to be established. Hydrogel coating represents one promising approach. However, the adhesion of the hydrogel layer onto the silicone implant surface presents a significant challenge due to the intrinsic hydrophobicity of silicone surfaces. In this study, we described a surface-priming strategy involving poly(vinyl acetate) (PVAc) polymers to facilitate hydrogel adhesion to silicone implant surfaces. Miniature silicone implants with identical surface properties to clinical implants were custom-made for this study. We demonstrated that a PVAc primer layer can easily be deposited on the implant surface via a dip-coating procedure. The wettability of the implant surface was increased by this primer layer, as confirmed by contact angle measurements. The improved wettability allowed the application of a model hydrogel precursor solution (alginate) on the primed implant surface. The effectiveness of such a priming strategy in facilitating hydrogel coating was validated by testing two commercially available hydrogels on the silicone implant surface. Specifically, DAC (Defensive Antibacterial Coating) and Coseal hydrogels, representing paintable and sprayable hydrogels respectively, were successfully coated on the primed surface, as confirmed by ATR-FTIR analysis. Our surface priming strategy, which avoids surface treatments like chemical reactions and plasma irradiation that are impractical for clinical use, opens up new opportunities for exploring intraoperative hydrogel applications on silicone implants.

bioengineering↗