4.8 Review

Recent Advances in Design of Functional Biocompatible Hydrogels for Bone Tissue Engineering

Journal

ADVANCED FUNCTIONAL MATERIALS
Volume 31, Issue 19, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/adfm.202009432

Keywords

biocompatible materials; bone tissue engineering; drug delivery; hydrogels

Funding

  1. NSF of China [91749204, 81771491, 21875044]
  2. National Key R&D Program of China [2020YFB2008600]
  3. Key Basic Research Program of Science and Technology Commission of Shanghai Municipality [20JC1415300]
  4. Program of Shanghai Academic Research Leader [19XD1420300]
  5. State Key Laboratory of Transducer Technology of China [SKT1904]

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Hydrogels are promising candidates for bone tissue engineering due to their unique 3D network structure. Injectable hydrogels based on biocompatible materials offer advantages in minimally invasive surgery and drug delivery. Advanced approaches and innovative ideas of bioactive hydrogels are expected to enhance the quality of life for patients with bone injuries.
Bone related diseases have caused serious threats to human health owing to their complexity and specificity. Fortunately, owing to the unique 3D network structure with high aqueous content and functional properties, emerging hydrogels are regarded as one of the most promising candidates for bone tissue engineering, such as repairing cartilage injury, skull defect, and arthritis. Herein, various design strategies and synthesis methods (e.g., 3D-printing technology and nanoparticle composite strategy) are introduced to prepare implanted hydrogel scaffolds with tunable mechanical strength, favorable biocompatibility, and excellent bioactivity for applying in bone regeneration. Injectable hydrogels based on biocompatible materials (e.g., collagen, hyaluronic acid, chitosan, polyethylene glycol, etc.) possess many advantages in minimally invasive surgery, including adjustable physicochemical properties, filling irregular shapes of defect sites, and on-demand release drugs or growth factors in response to different stimuli (e.g., pH, temperature, redox, enzyme, light, magnetic, etc.). In addition, drug delivery systems based on micro/nanogels are discussed, and its numerous promising designs used in the application of bone diseases (e.g., rheumatoid arthritis, osteoarthritis, cartilage defect) are also briefed in this review. Particularly, several key factors of hydrogel scaffolds (e.g., mechanical property, pore size, and release behavior of active factors) that can induce bone tissue regeneration are also summarized in this review. It is anticipated that advanced approaches and innovative ideas of bioactive hydrogels will be exploited in the clinical field and increase the life quality of patients with the bone injury.

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