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September 27, 2025Pharmaceutics15 citationsOpen Access

Next-Generation Natural Hydrogels in Oral Tissue Engineering

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MCMariana CheluMPMónica PopaJMJosé María Calderón Moreno

Key Points

  • Natural biopolymer-based hydrogels improve tissue regeneration, offering high-water content and strong biocompatibility.
  • Materials like chitosan, collagen, and gelatin enhance bioactivity, creating conditions that support cell growth and tissue remodeling.
  • Recent hydrogels incorporate bioactive agents that provide antimicrobial and anti-inflammatory benefits while promoting regeneration.
  • Challenges such as mechanical stability and clinical translation remain, highlighting the need for future optimization in regenerative dentistry.

Abstract

Hydrogels have emerged as promising biomaterials for oral tissue regeneration thanks to their high-water content, excellent biocompatibility, and ability to mimic native tissue environments. These versatile materials can be tailored to support cell adhesion, proliferation, and differentiation, making them suitable for repairing both soft and hard oral tissues. When engineered from natural polymers and enriched with bioactive agents, hydrogels offer enhanced regenerative potential. Biopolymer-based hydrogels, derived from materials such as chitosan, alginate, collagen, hyaluronic acid, and gelatin, are particularly attractive due to their biodegradability, bioactivity, and structural similarity to the extracellular matrix, creating an optimal microenvironment for cell growth and tissue remodeling. Recent innovations have transformed these systems into multifunctional platforms capable of supporting targeted regeneration of periodontal tissues, alveolar bone, oral mucosa, dental pulp, and dentin. Integration of bioactive molecules, particularly essential oils, bio-derived constituents, cells, or growth factors, has introduced intrinsic antimicrobial, anti-inflammatory, and antioxidant functionalities, addressing the dual challenge of promoting tissue regeneration while at the same time attenuating microbial contamination in the oral environment. This review explores the design strategies, material selection, functional properties, and biomedical applications in periodontal therapy, guided tissue regeneration, and implant integration of natural polymer-based hydrogels enriched with bioactive factors, highlighting their role in promoting oral tissue regeneration. In addition, we discuss current challenges related to mechanical stability, degradation rates, and clinical translation, while highlighting future directions for optimizing these next-generation bioactive hydrogel systems in regenerative dentistry.

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Cite This Study

Chelu et al. (2025) studied this question.

synapsesocial.com/papers/68d7b3e9eebfec0fc5236d8fhttps://doi.org/10.3390/pharmaceutics17101256
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