Tong J B, Sanjiv R, Elderdery A, Wu X, Rajesh R, Suresh Kumar S, Mok P L
Universiti Putra Malaysia, Faculty of Medicine and Health Sciences, Department of Biomedical Sciences, Selangor, Malaysia.
Universiti Putra Malaysia, Faculty of Medicine and Health Sciences, Department of Orthopaedic and Traumatology, Selangor, Malaysia.
Med J Malaysia. 2023 Jul;78(4):534-540.
The meniscus plays an important role in maintaining homeostasis to facilitate the normal function of the knee joint. It is one of the most commonly injured areas of the knee joint. Meniscal-related injuries can lead to significantly decreased athletic ability, and their incidence has increased yearly. It has been found that most meniscal injuries are irreparable, and meniscectomy can increase the predisposition to knee osteoarthritis. Tissue engineering technology on meniscus repairing and transplantation has received widespread attention recently. This review aimed to analyse the scientific literature regarding the potential applications of tissue engineering on meniscus repairing and transplantation procedures.
The electronic search was carried out using PubMed/MEDLINEⓇdatabases with the keywords "tissue engineering AND meniscus" spanning the period of publications from Jan 1980 until Dec 2022.
The literature search identified 405 references in PubMed/MEDLINE, and 179 were selected following the eligibility requirements. The research analysis showed that the existing meniscal tissue engineering studies used a wide variety of seed cells, cytokines, bioactive materials and 3D structures. Each showed distinct advantages and disadvantages in terms of biocompatibility, degradability, mechanical strength, porosity, and etc. It was noted that 3D printing technology is promising for tissue engineering meniscus research. In addition, the optimal use of compression and hydrostatic pressure to markedly improve the functional properties of tissue-engineering meniscal can serve as an useful strategy.
This review analysed the different approaches employed for meniscus tissue engineering and regeneration. Meniscal tissue engineering still faces several major challenges in terms of seed cells, choice of materials and 3D printing strategies, which should be effectively overcome to harness the full potential of this technology.
半月板在维持膝关节内环境稳定以促进其正常功能方面发挥着重要作用。它是膝关节最常受伤的部位之一。与半月板相关的损伤会导致运动能力显著下降,且其发病率逐年上升。已发现大多数半月板损伤无法修复,半月板切除术会增加患膝关节骨关节炎的易感性。半月板修复和移植的组织工程技术最近受到了广泛关注。本综述旨在分析关于组织工程在半月板修复和移植手术中潜在应用的科学文献。
使用PubMed/MEDLINEⓇ数据库进行电子检索,关键词为“组织工程与半月板”,检索时间段为1980年1月至2022年12月。
文献检索在PubMed/MEDLINE中识别出405篇参考文献,根据入选标准选择了179篇。研究分析表明,现有的半月板组织工程研究使用了多种种子细胞、细胞因子、生物活性材料和三维结构。每种在生物相容性、可降解性、机械强度、孔隙率等方面都显示出明显的优缺点。值得注意的是,3D打印技术在组织工程半月板研究方面具有前景。此外,最佳使用压缩和静水压力以显著改善组织工程半月板的功能特性可作为一种有用策略。
本综述分析了用于半月板组织工程和再生的不同方法。半月板组织工程在种子细胞、材料选择和3D打印策略方面仍面临几个主要挑战,为充分发挥该技术的潜力,应有效克服这些挑战。