AI Article Synopsis

  • Remote microactuators, which can be controlled by magnetic fields, are key tools for minimally-invasive cellular stimulation in biology and medicine.
  • Galfenol, an iron-based smart material known for its high magnetostriction and mechanical properties, is studied for its potential in biomedical applications, specifically focusing on its miniaturization and biocompatibility.
  • Research shows that Galfenol microparticles are non-cytotoxic and can be effectively actuated to form chains within and outside cells, making it a promising material for future cell biology and intracellular applications.

Article Abstract

Remote microactuators are of great interest in biology and medicine as minimally-invasive tools for cellular stimulation. Remote actuation can be achieved by active magnetostrictive transducers which are capable of changing shape in response to external magnetic fields thereby creating controlled displacements. Among the magnetostrictive materials, Galfenol, the multifaceted iron-based smart material, offers high magnetostriction with robust mechanical properties. In order to explore these capabilities for biomedical applications, it is necessary to study the feasibility of material miniaturization in standard fabrication processes as well as evaluate the biocompatibility. Here we develop a technology to fabricate, release, and suspend Galfenol-based microparticles, without affecting the integrity of the material. The morphology, composition and magnetic properties of the material itself are characterized. The direct cytotoxicity of Galfenol is evaluated in vitro using human macrophages, osteoblast and osteosarcoma cells. In addition, cytotoxicity and actuation of Galfenol microparticles in suspension are evaluated using human macrophages. The biological parameters analyzed indicate that Galfenol is not cytotoxic, even after internalization of some of the particles by macrophages. The microparticles were remotely actuated forming intra- and extracellular chains that did not impact the integrity of the cells. The results propose Galfenol as a suitable material to develop remote microactuators for cell biology studies and intracellular applications.

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Source
http://dx.doi.org/10.1016/j.biomaterials.2017.05.049DOI Listing

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