面向先进生物可降解植入装置的三维微加工系统

A. Yamada, F. Niikura, K. Ikuta
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摘要

我们开发了一种新的生物可降解聚合物的三维微加工方法。与传统工艺不同,我们的工艺满足高分辨率和高速要求。该系统设计允许我们通过从喷嘴中堆叠熔化的聚合物来处理微观水平的形状。从堆积的挤压线层中观察一层来评估分辨率。获得的横向和深度分辨率分别为40 /spl mu/m和45 /spl mu/n。可生物降解聚合物可以在不到15分钟的时间内制造出三维微结构,如微管、微弯和微线圈弹簧。使用细胞系(PC12)评估了该结构的生物相容性。用聚乳酸制作透明基底的小容器,并在其中培养细胞。然后将细胞形态和增殖情况与标准方法进行比较。我们的系统使生产无毒、无泄漏的设备成为可能。我们的显微组织的机械强度是用拉伸强度测试来评估的。该微结构的抗拉强度低于常规方法得到的微结构,但具有足够的制造医疗器械的强度。我们的系统有望在植入式器件的优化设计和制造中有潜在的应用。
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Three-dimensional microfabrication system toward advanced biodegradable implantable devices
We have developed a novel three-dimensional microfabrication method for biodegradable polymers. Unlike conventional processes, our process satisfies high-resolution and highspeed requirements. The system design allows us the processing of micro-level forms by stacking up melted polymers from the nozzle. A single layer from the piled-up layers of extruded lines was observed to evaluate the resolution. The lateral and depth resolutions attained are 40 /spl mu/m and 45 /spl mu/n, respectively. Biodegradable polymers enable three-dimensional microstructures such as micro-pipes, micro-bends, and micro-coil springs to be manufactured in less than 15 min. The biocompatibility of the structure was evaluated using a cell line (PC12). A small vessel, with a transparent base, was fabricated using PLA and cells were cultivated in it. The cell morphology and the proliferation were then compared with the results obtained using the standard method. Our system renders it possible to produce toxic-free, and leakage-free devices. The mechanical strength of our microstructures was evaluated using a tensile strength test. The tensile strength of the microstructure was lower than the one obtained from the conventional method, but has enough strength for fabrication of medical devices. Our system is expected to have potential applications in optimum design and fabrication of implantable devices.
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