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Enhanced Properties of Collagen Nanofiber Scaffolds via Chitosan/Polypyrrole/Glutaraldehyde Double-Crosslinking
Tonantzi Pérez-Moreno1, Jesús Humberto Chávez-Meza1, Jesús-Salvador Jaime-Ferrer2
1Facultad de Ingeniería, División de Investigación y Posgrado, Universidad Autónoma de Querétaro, Santiago de Querétaro 76010, Mexico.
Abstract:
To enhance the functionality of collagen (Coll)-based scaffolds, we developed a double-crosslinking strategy incorporating an electroconductive chitosan (Ch) and polypyrrole (Ppy) composite. Successful pre-crosslinking of Ch and Ppy was achieved using glutaraldehyde (GTA) at 100 µM. This facilitated imine linkage formation, confirmed by FTIR, enabling synergistic integration with Coll and successful nanofiber scaffold fabrication via electrospinning. While increasing the Ch-Ppy-GTA ratio affected the spinning process and higher GTA concentrations compromised fiber homogeneity, all other measured properties generally improved with increasing ratios. Crucially, this methodology allowed the membranes to maintain their morphology and significantly extended their degradation profile up to 20-30 days in PBS medium at 37 °C. Furthermore, the scaffolds exhibited electroactivity characterized by pseudocapacitance in the presence of Na+ and Ca2+ ions. These findings demonstrate a robust, tunable method for creating electroactive and structurally stable nanofiber scaffolds suitable for advanced tissue engineering.

