4.5 Article

Degradable and Tunable Keratin-fibrinogen Hydrogel as Controlled Release System for Skin Tissue Regeneration

期刊

JOURNAL OF BIONIC ENGINEERING
卷 20, 期 3, 页码 1049-1059

出版社

SPRINGER SINGAPORE PTE LTD
DOI: 10.1007/s42235-022-00317-7

关键词

Keratin; Fibrinogen; Hydrogel; Drug delivery; Degradable

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Biodegradable hydrogels have great potential as biomaterials for controlled-release systems in skin tissue regeneration. In this study, keratin-based hydrogels were synthesized and their properties were investigated for controllable protein delivery. The results showed that these hydrogels exhibited promising biological performance and could serve as suitable carriers for controlled protein delivery.
Biodegradable hydrogels are promising biomaterials for use in controlled-release systems for skin tissue regeneration. Controlled delivery systems constitute an important aspect of tissue engineering because they can modulate various physiological responses, including early immune response, tissue remodeling, and cell proliferation and maturation in the wound-healing process. Hydrogels composed of various biomaterials have been developed to overcome the limitations of conventional drug- or protein-delivery systems, such as limited targeting ability, low stability, and the induction of drug resistance. Hydrogels based on keratin, a natural polymer extracted from human hair, can provide adequate cell support and control homeostasis. Consequently, they can be applied for skin tissue engineering. In this study, we prepared degradable, tunable, and biocompatible hydrogels for controllable protein delivery. We synthesized keratin-fibrinogen (KER-FBG) by the chemical coupling reaction and prepared hydrogels through polymerization with thrombin. The structures and morphologies of the KER-FBG hydrogels were confirmed. Furthermore, the mechanical properties, swelling ratio, degradation, release behavior, and biocompatibility were investigated. The KER-FBG hydrogels presented promising biological performance, indicating that the material is suitable as a controlled protein delivery carrier.

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