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May 15, 2026Gels4 citationsOpen Access

Recent Advances and Applications of Chitin and Chitosan Hydrogel Scaffolds in Tissue Engineering

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AAA.M. Abdel-MohsenRARasha M. Abdel-RahmanKSKateřina Skotnicová

Key Points

  • This review aims to differentiate the roles of chitin and chitosan in hydrogel scaffold design and application in tissue engineering.
  • Comprehensive analysis of chitin- and chitosan-based hydrogels focusing on molecular structure and scaffold mechanics.
  • Examination of recent advances in crosslinking methods, biofunctionalization, and fabricating techniques like bioprinting.
  • Discussion on the relationship between scaffold design, degradation, and biological performance in various tissue applications.
  • Chitin is identified as a robust crystallin component enhancing scaffold strength.
  • Chitosan is shown to be a versatile matrix that allows diverse crosslinking and functionalization.
  • A unified framework linking scaffold structure, function, and application-specific requirements is introduced.

Abstract

Hydrogel scaffolds have emerged as a central platform in tissue engineering due to their ability to mimic the extracellular matrix and support cellular functions. Among natural polymers, chitin and its derivative chitosan have emerged as valuable candidates for hydrogel scaffold development because of their biodegradability, compatibility with living tissues, and inherent biological functionality; however, their distinct and complementary roles in hydrogel scaffold design are often insufficiently differentiated in the literature. This review provides a comprehensive and mechanism-driven analysis of chitin- and chitosan-based hydrogel scaffolds, emphasising how their molecular structure governs network formation, mechanical performance, and biological functionality. Chitin is highlighted primarily as a structurally robust and crystalline component suitable for reinforcement. In contrast, chitosan serves as a versatile, soluble, and chemically reactive matrix enabling various crosslinking and functionalization strategies. Recent advances in physical, ionic, and covalent crosslinking as well as composite scaffold engineering, biofunctionalization, and emerging fabrication approaches such as injectable systems and three-dimensional bioprinting are systematically examined. The relationships between scaffold architecture, degradation behaviour, and cellular responses are discussed in key tissue engineering applications, including bone, cartilage, skin, and nerve regeneration. Importantly, this review introduces a unified structure–property–function framework that distinguishes the roles of chitin and chitosan within hydrogel systems and links crosslinking mechanisms to application-specific performance requirements, an aspect not comprehensively addressed in previous studies. Current challenges related to mechanical limitations, material variability, and clinical translation are critically evaluated, and future perspectives for the rational design of next-generation biomimetic hydrogel scaffolds are proposed.

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Cite This Study

Abdel-Mohsen et al. (2026) studied this question.

synapsesocial.com/papers/6a06b940e7dec685947abd0ahttps://doi.org/10.3390/gels12050427
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