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Additive manufacturing of hydrogel-based materials for next-generation implantable medical devices

机译:用于下一代可植入医疗设备的水凝胶基材料的增材制造

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摘要

Implantable microdevices often have static components rather than moving parts, and exhibit limited biocompatibility. This paper demonstrates a fast manufacturing method which can produce features in biocompatible materials down to tens of microns in scale, with intricate and composite patterns in each layer. By exploiting unique mechanical properties of hydrogels, we developed a “locking mechanism” for precise actuation and movement of freely moving parts, which can provide functions such as valves, manifolds, rotors, pumps, and delivery of payloads. Hydrogel components could be tuned within a wide range of mechanical and diffusive properties, and can be controlled after implantation without a sustained power supply. In a mouse model of osteosarcoma, triggering of release of doxorubicin from the device over ten days showed high treatment efficacy and low toxicity, at one-tenth of a standard systemic chemotherapy dose. Overall, this platform, called “iMEMS”, enables development of biocompatible implantable microdevices with a wide range of intricate moving components that can be wirelessly controlled on demand, in a manner that solves issues of device powering and biocompatibility.
机译:可植入的微型设备通常具有静态组件,而不是活动部件,并且具有有限的生物相容性。本文演示了一种快速制造方法,该方法可以在生物相容性材料中产生尺寸低至数十微米的特征,并且每一层都有复杂的复合图案。通过利用水凝胶的独特机械性能,我们开发了一种“锁定机构”,用于精确地驱动和移动自由移动的零件,该零件可以提供诸如阀门,歧管,转子,泵和有效载荷的输送之类的功能。水凝胶成分可以在广泛的机械和扩散特性范围内进行调整,并且可以在植入后无需持续供电的情况下进行控制。在骨肉瘤的小鼠模型中,在十天的标准全身化疗剂量的十倍之内,触发阿霉素从装置中释放会显示出高治疗功效和低毒性。总体而言,这个名为“ iMEMS”的平台能够开发具有多种复杂移动组件的生物相容性植入式微型设备,这些组件可以按需进行无线控制,从而解决了设备供电和生物相容性问题。

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