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首页> 外文期刊>Journal of biomaterials applications >Comparison of different three dimensional-printed resorbable materials: In vitro biocompatibility, In vitro degradation rate, and cell differentiation support
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Comparison of different three dimensional-printed resorbable materials: In vitro biocompatibility, In vitro degradation rate, and cell differentiation support

机译:不同三维印刷可再吸收材料的比较:体外生物相容性,体外降解速率和细胞分化载体

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Biodegradable materials play a crucial role in both material and medical sciences and are frequently used as a primary commodity for implants generation. Due to their material inherent properties, they are supposed to be entirely resorbed by the patients' body after fulfilling their task as a scaffold. This makes a second intervention (e.g. for implant removal) redundant and significantly enhances a patient's post-operative life quality. At the moment, materials for resorbable and biodegradable implants (e.g. polylactic acid or poly-caprolactone polymers) are still intensively studied. They are able to provide mandatory demands such as mechanical strength and attributes needed for high-quality implants. Implants, however, not only need to be made of adequate material, but must also to be personalized in order to meet the customers' needs. Combining three dimensional-printing and high-resolution imaging technologies a new age of implant production comes into sight. Three dimensional images (e.g. magnetic resonance imaging or computed tomography) of tissue defects can be utilized as digital blueprints for personalized implants. Modern additive manufacturing devices are able to use a variety of materials to fabricate custom parts within short periods of time. The combination of high-quality resorbable materials and personalized three dimensional-printing for the custom application will provide the patients with the best suitable and sustainable implants. In this study, we evaluated and compared four resorbable and three dimensional printable materials for their in vitro biocompatibility, in vitro rate of degradation, cell adherence and behavior on these materials as well as support of osteogenic differentiation of human adipose tissue-derived mesenchymal stem cells. The tests were conducted with model constructs of 1 cm(2) surface area fabricated with fused deposition modeling three dimensional-printing technology.
机译:可生物降解的材料在材料和医学科学中起着至关重要的作用,经常被用作植入物生成的主要商品。由于其材料固有的属性,它们应该在完成其作为脚手架之后完全由患者的身体反演。这使得第二干预(例如植入物去除)冗余,并显着提高了患者的术后寿命。目前,仍然集中研究可再吸收和可生物降解的植入物的材料(例如聚乳酸或聚环甲酯聚合物)。他们能够提供强制性要求,例如高质量植入物所需的机械强度和属性。然而,植入物不仅需要由足够的材料制成,而且还必须是个性化的,以满足客户的需求。结合三维印刷和高分辨率成像技术,植入生产的新时代进入了视线。组织缺陷的三维图像(例如磁共振成像或计算断层扫描)可用作个性化植入物的数字蓝图。现代添加剂制造装置能够在短时间内使用各种材料来制造定制部件。用于定制应用的高质量可再吸收材料和个性化三维印刷的组合将为患者提供最合适的合适和可持续植入物。在这项研究中,我们评估并比较了四种可再吸收和三维可打印材料,用于其体外生物相容性,这些材料的体外降解,细胞粘附性和行为的体外,以及人类脂肪组织衍生的间充质干细胞的骨质发生分化的支持。用熔融沉积建模三维印刷技术制造的1cm(2)表面积的模型构造进行了测试。

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