首页> 外文会议>ASME international mechanical engineering congress and exposition >ENHANCED HUMAN BONE MARROW MESENCHYMAL STEM CELL FUNCTIONS IN 3D BIOPRINTED BIOLOGICALLY INSPIRED OSTEOCHONDRAL CONSTRUCT
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ENHANCED HUMAN BONE MARROW MESENCHYMAL STEM CELL FUNCTIONS IN 3D BIOPRINTED BIOLOGICALLY INSPIRED OSTEOCHONDRAL CONSTRUCT

机译:3D生物印迹骨软骨结构增强的人骨髓间充质干细胞功能

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Cartilage defects, which are caused by a variety of reasons such as traumatic injuries, osteoarthritis, or osteoporosis, represent common and severe clinical problems. Each year, over 6 million people visit hospitals in the U.S. for various knee, wrist, and ankle problems. As modern medicine advances, new and novel methodologies have been explored and developed in order to solve and improve current medical problems. One of the areas of investigation that has thus far proven to be very promising is tissue engineering. Since cartilage matrix is nanocomposite, the goal of the current work is to use nanomaterials and nano/microfabrication methods to create novel biologically inspired tissue engineered osteochondral scaffolds for facilitating human bone marrow mesenchymal stem cell (MSC) differentiation. 3D printed polymer constructs were designed to mimic the osteochondral region of articulate joint, and to have enhanced mechanical characteristics when compared to traditional designs. Fabricated scaffolds were also subject to surface modification, both with a chemically functionalized acetylated collagen coating and through absorption via poly-L-lysine coated carbon nanotubes. In vitro proliferation results demonstrated not only that incorporation of the biomimetic carbon nanotubes and poly L-lysine coating and acetylated collagen can induce more proliferation of MSCs than controls, but that more controlled and biomimetically designed features also enhance proliferation of MSCs.
机译:由多种原因引起的软骨缺损,例如外伤,骨关节炎或骨质疏松,代表了常见且严重的临床问题。每年,有超过600万人因各种膝盖,手腕和脚踝问题而去美国的医院就诊。随着现代医学的发展,已经探索和开发了新的和新颖的方法,以解决和改善当前的医学问题。迄今为止,已证明非常有前途的研究领域之一是组织工程。由于软骨基质是纳米复合材料,因此当前工作的目标是使用纳米材料和纳米/微加工方法来创建新型的生物启发性组织工程化骨软骨支架,以促进人骨髓间充质干细胞(MSC)的分化。 3D打印的聚合物构造被设计为模仿关节的软骨区域,并且与传统设计相比具有增强的机械特性。制成的支架也要进行表面改性,既要用化学功能化的乙酰化胶原蛋白涂层,又要通过聚-L-赖氨酸涂层的碳纳米管吸收。体外增殖结果表明,仿生碳纳米管和聚L-赖氨酸涂层以及乙酰化胶原蛋白的掺入可以比对照诱导更多的MSCs增殖,而且更具控制性和仿生设计的功能还可以增强MSCs的增殖。

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