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. 2018 Jul 18:(137):56727.
doi: 10.3791/56727.

An Additive Manufacturing Technique for the Facile and Rapid Fabrication of Hydrogel-based Micromachines with Magnetically Responsive Components

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An Additive Manufacturing Technique for the Facile and Rapid Fabrication of Hydrogel-based Micromachines with Magnetically Responsive Components

Sau Yin Chin et al. J Vis Exp. .

Abstract

Polyethylene glycol (PEG)-based hydrogels are biocompatible hydrogels that have been approved for use in humans by the FDA. Typical PEG-based hydrogels have simple monolithic architectures and often function as scaffolding materials for tissue engineering applications. More sophisticated structures typically take a long time to fabricate and do not contain moving components. This protocol describes a photolithography method that allows for facile and rapid microfabrication of PEG structures and devices. This strategy involves an in-house developed fabrication stage that allows for the rapid fabrication of 3D structures by building upwards in a layer-by-layer fashion. Independent moving components can also be aligned and assembled onto support structures to form integrated devices. These independent components are doped with superparamagnetic iron oxide nanoparticles that are sensitive to magnetic actuation. In this manner, the fabricated devices can be actuated using external magnets to yield movement of the components within. Hence, this technique allows for the fabrication of sophisticated MEMS-like devices (micromachines) that are composed entirely out of a biocompatible hydrogel, able to function without an onboard power source, and respond to a contact-less method of actuation. This manuscript describes the fabrication of both the fabrication set-up as well as the step-by-step method for the microfabrication of these hydrogels-based MEMS-like devices.

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References

    1. Elman NM, Ho Duc HL, Cima MJ. An implantable MEMS drug delivery device for rapid delivery in ambulatory emergency care. Biomedical Microdevices. 2009;11(3):625–631. - PubMed
    1. Gensler H, Sheybani R, Li PY, Mann RL, Meng E. An implantable MEMS micropump system for drug delivery in small animals. Biomedical Microdevices. 2012;14(3):483–496. - PMC - PubMed
    1. Grayson ACR, et al. BioMEMS review: MEMS technology for physiologically integrated devices. Proceedings of the IEEE. 2004;92(1):6–21.
    1. Frost M, Meyerhoff ME. In vivo chemical sensors: tackling biocompatibility. Analytical Chemistry. 2006;78(21):7370–7377. - PubMed
    1. Voskerician G, et al. Biocompatibility and biofouling of MEMS drug delivery devices. Biomaterials. 2003;24(11):1959–1967. - PubMed

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