Effects of low-intensity pulsed ultrasound stimulation on cell seeded 3D hybrid scaffold as a novel strategy for meniscus regeneration: An in vitro study

IF 3.1 3区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Tissue Engineering and Regenerative Medicine Pub Date : 2022-06-11 DOI:10.1002/term.3331
Melika Babaei, Nima Jamshidi, Farshad Amiri, Mohammad Rafienia
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引用次数: 2

Abstract

Menisci are fibrocartilaginous structures in the knee joint with an inadequate regenerative capacity, which causes low healing potential and further leads to osteoarthritis. Recently, three-dimensional (3D) printing techniques and ultrasound treatment have gained plenty of attention for meniscus tissue engineering. The present study investigates the effectiveness of low-intensity pulsed ultrasound stimulations (LIPUS) on the proliferation, viability, morphology, and gene expression of the chondrocytes seeded on 3D printed polyurethane scaffolds dip-coated with gellan gum, hyaluronic acid, and glucosamine. LIPUS stimulation was performed at 100, 200, and 300 mW/cm2 intensities for 20 min/day. A faster gap closure (78.08 ± 2.56%) in the migration scratch assay was observed in the 200 mW/cm2 group after 24 h. Also, inverted microscopic and scanning electron microscopic images showed no cell morphology changes during LIPUS exposure at different intensities. The 3D cultured chondrocytes under LIPUS treatment revealed a promotion in cell proliferation rate and viability as the intensity doses increased. Additionally, LIPUS could stimulate chondrocytes to overexpress the aggrecan and collagen II genes and improve their chondrogenic phenotype. This study recommends that the combination of LIPUS treatment and 3D hybrid scaffolds can be considered as a valuable treatment for meniscus regeneration based on our in vitro data.

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低强度脉冲超声刺激细胞种子三维杂交支架作为半月板再生新策略的影响:一项体外研究
半月板是膝关节的纤维软骨结构,再生能力不足,导致愈合潜力低,进一步导致骨关节炎。近年来,三维打印技术和超声治疗在半月板组织工程中得到了广泛的关注。本研究探讨了低强度脉冲超声刺激(LIPUS)对3D打印聚氨酯支架上的软骨细胞增殖、活力、形态和基因表达的影响,该支架浸渍了结冷胶、透明质酸和葡萄糖胺。LIPUS刺激在100、200和300 mW/cm2强度下进行,持续20分钟/天。在200 mW/cm2组中,24 h后细胞迁移划痕的闭合速度更快(78.08±2.56%)。倒置显微镜和扫描电镜显示,不同强度LIPUS暴露期间细胞形态没有变化。三维培养的软骨细胞在LIPUS作用下,随着强度剂量的增加,细胞增殖率和活力均有所提高。此外,LIPUS可以刺激软骨细胞过表达聚集蛋白和胶原II基因,改善其软骨细胞表型。根据我们的体外实验数据,本研究建议LIPUS治疗与3D杂交支架联合使用可被认为是一种有价值的半月板再生治疗方法。
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来源期刊
CiteScore
7.50
自引率
3.00%
发文量
97
审稿时长
4-8 weeks
期刊介绍: Journal of Tissue Engineering and Regenerative Medicine publishes rapidly and rigorously peer-reviewed research papers, reviews, clinical case reports, perspectives, and short communications on topics relevant to the development of therapeutic approaches which combine stem or progenitor cells, biomaterials and scaffolds, growth factors and other bioactive agents, and their respective constructs. All papers should deal with research that has a direct or potential impact on the development of novel clinical approaches for the regeneration or repair of tissues and organs. The journal is multidisciplinary, covering the combination of the principles of life sciences and engineering in efforts to advance medicine and clinical strategies. The journal focuses on the use of cells, materials, and biochemical/mechanical factors in the development of biological functional substitutes that restore, maintain, or improve tissue or organ function. The journal publishes research on any tissue or organ and covers all key aspects of the field, including the development of new biomaterials and processing of scaffolds; the use of different types of cells (mainly stem and progenitor cells) and their culture in specific bioreactors; studies in relevant animal models; and clinical trials in human patients performed under strict regulatory and ethical frameworks. Manuscripts describing the use of advanced methods for the characterization of engineered tissues are also of special interest to the journal readership.
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