Engineering gene-activated bioprinted scaffolds for enhancing articular cartilage repair.

IF 8.7 1区 医学 Q1 ENGINEERING, BIOMEDICAL Materials Today Bio Pub Date : 2024-11-19 eCollection Date: 2024-12-01 DOI:10.1016/j.mtbio.2024.101351
Min Wang, Jiachen Wang, Xin Xu, Erliang Li, Peng Xu
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Abstract

Untreated articular cartilage injuries often result in severe chronic pain and dyskinesia. Current repair strategies have limitations in effectively promoting articular cartilage repair, underscoring the need for innovative therapeutic approaches. A gene-activated matrix (GAM) is a promising and comprehensive therapeutic strategy that integrates tissue-engineered scaffold-guided gene therapy to promote long-term articular cartilage repair by enhancing gene retention, reducing gene loss, and regulating gene release. However, for effective articular cartilage repair, the GAM scaffold must mimic the complex gradient structure of natural articular cartilage. Three-dimensional (3D) bioprinting technology has emerged as a compelling solution, offering the ability to precisely create complex microstructures that mimic the natural articular cartilage. In this review, we summarize the recent research progress on GAM and 3D bioprinted scaffolds in articular cartilage tissue engineering (CTE), while also exploring future challenges and development directions. This review aims to provide new ideas and concepts for the development of gene-activated bioprinted scaffolds with specific properties tailored to meet the stringent requirements of articular cartilage repair.

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工程基因激活生物打印支架增强关节软骨修复。
未经治疗的关节软骨损伤常常导致严重的慢性疼痛和运动障碍。目前的修复策略在有效促进关节软骨修复方面存在局限性,因此需要创新的治疗方法。基因激活基质(GAM)是一种很有前途的综合治疗策略,它结合了组织工程支架引导的基因治疗,通过增强基因保留、减少基因丢失和调节基因释放来促进关节软骨的长期修复。然而,为了有效修复关节软骨,GAM支架必须模仿天然关节软骨复杂的梯度结构。三维(3D)生物打印技术已经成为一种引人注目的解决方案,提供了精确创建模拟天然关节软骨的复杂微结构的能力。本文综述了近年来GAM和生物3D打印支架在关节软骨组织工程(CTE)中的研究进展,并探讨了未来的挑战和发展方向。本文旨在为开发具有特定性能的基因激活生物打印支架提供新的思路和概念,以满足关节软骨修复的严格要求。
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来源期刊
CiteScore
8.30
自引率
4.90%
发文量
303
审稿时长
30 days
期刊介绍: Materials Today Bio is a multidisciplinary journal that specializes in the intersection between biology and materials science, chemistry, physics, engineering, and medicine. It covers various aspects such as the design and assembly of new structures, their interaction with biological systems, functionalization, bioimaging, therapies, and diagnostics in healthcare. The journal aims to showcase the most significant advancements and discoveries in this field. As part of the Materials Today family, Materials Today Bio provides rigorous peer review, quick decision-making, and high visibility for authors. It is indexed in Scopus, PubMed Central, Emerging Sources, Citation Index (ESCI), and Directory of Open Access Journals (DOAJ).
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