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  2. Dual cross-linked polyurethane-alginate biomimetic hydrogel for elastic gradient simulation in osteochondral structures: Microenvironment modulation and tissue regeneration

Dual cross-linked polyurethane-alginate biomimetic hydrogel for elastic gradient simulation in osteochondral structures: Microenvironment modulation and tissue regeneration

  • Int J Biol Macromol. 2024 Nov;281(Pt 2):136215. doi: 10.1016/j.ijbiomac.2024.136215.
Jianming Zhao 1 Ziyuan Fang 1 Bingxuan Wang 2 Jinming Li 1 Abudureheman Bahatibieke 1 Haoye Meng 3 Yajie Xie 1 Jiang Peng 2 Yudong Zheng 4
Affiliations

Affiliations

  • 1 School of Material Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China.
  • 2 Beijing Key Laboratory of Regenerative Medicine in Orthopedics; Key Laboratory of Musculoskeletal Trauma & War Injuries PLA; PLA Institute of Orthopedics, Chinese PLA General Hospital, Beijing 100853, China.
  • 3 Beijing Key Laboratory of Regenerative Medicine in Orthopedics; Key Laboratory of Musculoskeletal Trauma & War Injuries PLA; PLA Institute of Orthopedics, Chinese PLA General Hospital, Beijing 100853, China. Electronic address: menghaoye@126.com.
  • 4 School of Material Science and Engineering, University of Science and Technology Beijing, Beijing 100083, China. Electronic address: zhengyudong@mater.ustb.edu.cn.
Abstract

The distinctive composition and functions of osteochondral structures result in constrained regeneration. Insufficient healing processes may precipitate the emergence of tissue growth disorders or excessive subchondral bone formation, which can culminate in the deterioration and failure of osteochondral tissue repair. To overcome these limitations, Materials designed for osteochondral repair must provide region-specific modulation of the microenvironment and mechanical compatibility. To address these challenges, we propose a method to create continuous hydrogels with distinct structural and functional properties by a precise cross-linking method. We have developed an innovative polyurethane enriched with dimethylglyoxime, facilitating the coordinated loading and precise release of Zn2+. This strategy enables the meticulous control of alginate cross-linking, resulting in an elastic gradient hydrogel that closely resembles the osteochondral interface. The SeSe within the hydrogel effectively modulates the inflammatory microenvironment and fosters the M2 polarization of macrophages. The hydrogel's lower layer is designed to rapidly release Zn2+, thereby enhancing bone regeneration. The upper layer is intended to prevent bone overgrowth and stimulate chondrogenic differentiation. This dual-layer strategy allows targeted stimuli to each region, promoting the seamless integration of neoosteochondral tissue. Our study demonstrates the potential of this stratified hydrogel in achieving uniform and smooth osteochondral tissue regeneration.

Keywords

Alginate; Osteochondral regeneration; Polyurethane.

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