Search bioRxiv⌕ Search

Biology subjects

Binderman, I.

Publications and source records attributed to Binderman, I..

2 recordsLinked to original sources

3D-Printed Titanium Implants with Bioactive Peptide-polysaccharide Scaffolds for Personalized Bone Reconstruction

Large bone defects caused by trauma, tumor resection, or congenital abnormalities remain a major clinical challenge. Standard titanium implants are widely used due to their strength and biocompatibility, but their bioinert surfaces often lead to poor osseointegration. The emergence of 3D printing has enabled patient-specific titanium implants with tailored architecture and mechanical properties. However, these constructs still lack the bioactivity required for robust and spatially uniform bone integration, particularly within the implant core. To address this limitation, we developed a bioactive, cell-free strategy that integrates porous titanium implants with a nanofibrillar peptide-hyaluronic acid scaffold, delivered either as a hydrogel or in lyophilized form. The scaffold exhibited enhanced enzymatic stability and supported osteoblast-like cell adhesion in vitro. In a rabbit calvarial critical-size bone defect model, scaffold-integrated implants significantly outperformed inert controls, with hydrogel integration nearly doubling inner bone volume and improving trabecular architecture. Histological analysis confirmed enhanced bone-implant integration, active periosteum, healthy marrow, and reduced inflammation. This acellular, growth-factor-free approach combines the structural precision of titanium with the regenerative potential of ECM-mimicking scaffolds, offering a translatable pathway for personalized skeletal repair.

bioengineering↗

Stable, Easy-to-Handle, Fully Autologous Electrospun Polymer-Peptide Skin Equivalent for Severe Burn Injuries

Severe burn injuries represent a significant clinical challenge due to their complex healing process and the high risk of complications, including infection, scarring, and contracture formation. Current therapeutic approaches for burn wound treatment include autologous donor-site grafting and advanced cell therapy techniques like cultured epidermal autografts (CEA), which successfully facilitate wound closure through re-epithelialization. However, CEAs are limited by fragility, shrinkage, lack of a dermal layer, and risks of contamination. Here, aiming to overcome these limitations, we developed a personalized skin equivalent featuring an engineered scaffold composed of electrospun polycaprolactone (PCL) functionalized with the bioactive peptide fluorenylmethyloxycarbonyl-phenylalanine-arginine-glycine-aspartic acid (Fmoc-FRGD). This scaffold is designed to mimic the natural extracellular matrix (ECM), promoting cellular adhesion, integration, and proliferation while maintaining structural integrity. In-vitro analysis demonstrated the scaffolds ability to support multi-layered human skin cell growth, while in-vivo experiments confirmed its efficacy in facilitating wound closure and full-thickness skin regeneration in a murine model. This bioengineered skin equivalent is mechanically robust, easy to handle, fully autologous and exhibits no contraction, offering a transformative therapeutic alternative for the treatment of severe burn injuries.

bioengineering↗