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组织工程学在骨科领域的应用研究
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作者 陈百成 《河北医药》 CAS 2002年第2期83-85,共3页
关键词 组织工程 骨科领域 应用研究 组织工程 肌肉组织工程 软骨细胞组织工程
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星孢菌素干预组织工程化颞下颌关节盘自组装基体收缩的机制
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作者 罗银月 李鸿燕 +1 位作者 包广洁 康宏 《中国组织工程研究》 CAS 北大核心 2018年第30期4888-4893,共6页
背景:颞下颌关节盘细胞自组装基体在生长过程中出现的体积收缩现象机制不明,有研究认为可能与细胞骨架蛋白肌动蛋白的收缩效应有关。目的:探索星孢菌素对颞下颌关节盘细胞、肌动蛋白和细胞外基质代谢的影响,阐明可能导致自组装基体收缩... 背景:颞下颌关节盘细胞自组装基体在生长过程中出现的体积收缩现象机制不明,有研究认为可能与细胞骨架蛋白肌动蛋白的收缩效应有关。目的:探索星孢菌素对颞下颌关节盘细胞、肌动蛋白和细胞外基质代谢的影响,阐明可能导致自组装基体收缩的机制。方法:由第一作者检索2000至2018年PubMed、Web of Science核心合集数据库相关文献,检索关键词为"staurosporine,temporomandibular joint disc tissue engineering,chondrocyte tissue engineering,self-assembly";检索2000至2018年CNKI中文数据库相关文献,中文检索词为"星孢菌素,颞下颌关节盘组织工程,软骨细胞组织工程,自组装"。结果与结论:颞下颌关节盘细胞自组装基体收缩的可能原因:体外关节盘细胞的收缩;细胞类型的不同;基体营养通路障碍;肌动蛋白过表达;细胞外基质减少。星孢菌素减少肌动蛋白细胞骨架的表达,抑制细胞收缩,上调细胞外基质中重要基质蛋白胶原、聚集蛋白聚糖及软骨寡聚基质蛋白的量,抑制基体收缩。 展开更多
关键词 星孢菌素 颞下颌关节盘组织工程 软骨细胞组织工程 自组装 生物材料 细胞外基质 颞下颌关节盘 肌动蛋白类 组织工程
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4-Axis printing microfibrous tubular scaffold and tracheal cartilage application 被引量:2
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作者 Dong Lei Bin Luo +12 位作者 Yifan Guo Di Wang Hao Yang Shaofei Wang Huixia Xuan Ao Shen Yi Zhang Zenghe Liu Chuanglong He Feng-Ling Qing Yong Xu Guangdong Zhou Zhengwei You 《Science China Materials》 SCIE EI CSCD 2019年第12期1910-1920,共11页
Long-segment defects remain a major problem in clinical treatment of tubular tissue reconstruction.The design of tubular scaffold with desired structure and functional properties suitable for tubular tissue regenerati... Long-segment defects remain a major problem in clinical treatment of tubular tissue reconstruction.The design of tubular scaffold with desired structure and functional properties suitable for tubular tissue regeneration remains a great challenge in regenerative medicine.Here,we present a reliable method to rapidly fabricate tissueengineered tubular scaffold with hierarchical structure via 4-axis printing system.The fabrication process can be adapted to various biomaterials including hydrogels,thermoplastic materials and thermosetting materials.Using polycaprolactone(PCL)as an example,we successfully fabricated the scaffolds with tunable tubular architecture,controllable mesh structure,radial elasticity,good flexibility,and luminal patency.As a preliminary demonstration of the applications of this technology,we prepared a hybrid tubular scaffold via the combination of the 4-axis printed elastic poly(glycerol sebacate)(PGS)bio-spring and electrospun gelatin nanofibers.The scaffolds seeded with chondrocytes formed tubular mature cartilage-like tissue both via in vitro culture and subcutaneous implantation in the nude mouse,which showed great potential for tracheal cartilage reconstruction. 展开更多
关键词 3D printing tissue engineering tubular scaffold tracheal cartilage
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