Magnetically driven piezoelectric soft microswimmers for neuron-like cell delivery and neuronal differentiation

Open access
Date
2019-08-01Type
- Journal Article
Citations
Cited 62 times in
Web of Science
Cited 65 times in
Scopus
ETH Bibliography
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Abstract
Wireless micro- and nanorobots are biomedical devices with a potential use in high-precision minimally invasive therapies. Here, a highly integrated multifunctional soft microrobot is developed for targeted cell therapy applications, featuring targeted cell transportation and induced cell differentiation. The micromachines are made of composites consisting of a soft piezoelectric polymer matrix in which magnetic nanoparticles are dispersed. The magnetic nanoparticles serve as the component for the device's magnetic actuation, while the piezoelectric polymer acts as both a steerable scaffold and an acoustically responsive cell electrostimulation platform. With the application of a rotating magnetic field, the microrobots swim in a corkscrew motion in different liquid environments that mimic human body fluids. When the swimmers are subjected to acoustic waves, their piezoelectric body is electrically polarized which induces cell differentiation of neuron-like PC12 cells loaded on the swimmers surface. This combinatorial technique may open up new avenues for bioelectronic therapies. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000359798Publication status
publishedExternal links
Journal / series
Materials HorizonsVolume
Pages / Article No.
Publisher
Royal Society of ChemistryOrganisational unit
03627 - Nelson, Bradley J. / Nelson, Bradley J.
08705 - Gruppe Pané Vidal
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Citations
Cited 62 times in
Web of Science
Cited 65 times in
Scopus
ETH Bibliography
yes
Altmetrics