GelMA-based bioactive hydrogel scaffolds with multiple bone defect repair functions: therapeutic strategies and recent advances.

IF 11.3 1区 医学 Q1 Medicine Biomaterials Research Pub Date : 2023-09-15 DOI:10.1186/s40824-023-00422-6
Bixia Zhou, Xulei Jiang, Xinxin Zhou, Wuyuan Tan, Hang Luo, Shaorong Lei, Ying Yang
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引用次数: 1

Abstract

Currently, the clinical treatment of critical bone defects attributed to various causes remains a great challenge, and repairing these defects with synthetic bone substitutes is the most common strategy. In general, tissue engineering materials that mimic the structural, mechanical and biological properties of natural bone have been extensively applied to fill bone defects and promote in situ bone regeneration. Hydrogels with extracellular matrix (ECM)-like properties are common tissue engineering materials, among which methacrylate-based gelatin (GelMA) hydrogels are widely used because of their tunable mechanical properties, excellent photocrosslinking capability and good biocompatibility. Owing to their lack of osteogenic activity, however, GelMA hydrogels are combined with other types of materials with osteogenic activities to improve the osteogenic capability of the current composites. There are three main aspects to consider when enhancing the bone regenerative performance of composite materials: osteoconductivity, vascularization and osteoinduction. Bioceramics, bioglass, biomimetic scaffolds, inorganic ions, bionic periosteum, growth factors and two-dimensional (2D) nanomaterials have been applied in various combinations to achieve enhanced osteogenic and bone regeneration activities. Three-dimensional (3D)-bioprinted scaffolds are a popular research topic in bone tissue engineering (BTE), and printed and customized scaffolds are suitable for restoring large irregular bone defects due to their shape and structural tunability, enhanced mechanical properties, and good biocompatibility. Herein, the recent progress in research on GelMA-based composite hydrogel scaffolds as multifunctional platforms for restoring critical bone defects in plastic or orthopedic clinics is systematically reviewed and summarized. These strategies pave the way for the design of biomimetic bone substitutes for effective bone reconstruction with good biosafety. This review provides novel insights into the development and current trends of research on GelMA-based hydrogels as effective bone tissue engineering (BTE) scaffolds for correcting bone defects, and these contents are summarized and emphasized from various perspectives (osteoconductivity, vascularization, osteoinduction and 3D-bioprinting). In addition, advantages and deficiencies of GelMA-based bone substitutes used for bone regeneration are put forward, and corresponding improvement measures are presented prior to their clinical application in near future (created with BioRender.com).

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具有多种骨缺损修复功能的生物活性水凝胶支架:治疗策略及最新进展。
目前,各种原因导致的严重骨缺损的临床治疗仍然是一个巨大的挑战,使用合成骨替代物修复这些缺损是最常见的策略。一般来说,组织工程材料模仿天然骨的结构、力学和生物学特性,已被广泛应用于骨缺损的填充和促进原位骨再生。具有细胞外基质(ECM)样性质的水凝胶是常见的组织工程材料,其中甲基丙烯酸酯基明胶(GelMA)水凝胶因其具有可调节的力学性能、优异的光交联能力和良好的生物相容性而被广泛应用。然而,由于缺乏成骨活性,GelMA水凝胶与其他类型的具有成骨活性的材料结合,以提高现有复合材料的成骨能力。在增强复合材料的骨再生性能时,需要考虑三个主要方面:骨导电性、血管化和骨诱导。生物陶瓷、生物玻璃、仿生支架、无机离子、仿生骨膜、生长因子和二维(2D)纳米材料已被应用于各种组合,以实现增强的成骨和骨再生活性。三维生物打印支架是骨组织工程(BTE)领域的热门研究课题,3D打印和定制支架由于其形状和结构的可调性、力学性能的增强以及良好的生物相容性,适用于修复较大的不规则骨缺损。本文系统综述了近年来gelma基复合水凝胶支架作为多功能平台修复骨科或整形外科临床关键骨缺损的研究进展。这些策略为设计具有良好生物安全性的仿生骨替代品铺平了道路。本文综述了gelma基水凝胶作为骨组织工程(bone tissue engineering, BTE)修复骨缺损的有效支架的研究进展和当前趋势,并从骨导电性、血管化、骨诱导和3d生物打印等多个角度对这些内容进行了总结和强调。此外,本文还提出了gelma基骨替代物用于骨再生的优点和不足,并在不久的将来(由BioRender.com创建)临床应用前提出了相应的改进措施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomaterials Research
Biomaterials Research Medicine-Medicine (miscellaneous)
CiteScore
10.20
自引率
3.50%
发文量
63
审稿时长
30 days
期刊介绍: Biomaterials Research, the official journal of the Korean Society for Biomaterials, is an open-access interdisciplinary publication that focuses on all aspects of biomaterials research. The journal covers a wide range of topics including novel biomaterials, advanced techniques for biomaterial synthesis and fabrication, and their application in biomedical fields. Specific areas of interest include functional biomaterials, drug and gene delivery systems, tissue engineering, nanomedicine, nano/micro-biotechnology, bio-imaging, regenerative medicine, medical devices, 3D printing, and stem cell research. By exploring these research areas, Biomaterials Research aims to provide valuable insights and promote advancements in the biomaterials field.
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