Magnetic Nanocomposite Hydrogels for Tissue Engineering: Design Concepts and Remote Actuation Strategies to Control Cell Fate

last updated: 2022-01-19
ProjectMagTendon :: publications list
TitleMagnetic Nanocomposite Hydrogels for Tissue Engineering: Design Concepts and Remote Actuation Strategies to Control Cell Fate
Publication TypeReview Paper
Year of Publication2021
AuthorsPardo A., Gómez-Florit M., Barbosa S., Taboada P., Domingues R. M. A., and Gomes M. E.
Abstract Text

Most tissues of the human body are characterized by highly anisotropic physical properties and biological organization. Hydrogels have been proposed as scaffolding materials to construct artificial tissues due to their water-rich composition, biocompatibility and tunable properties. However, unmodified hydrogels are typically composed of randomly oriented polymer networks, resulting in homogeneous structures with isotropic properties different from those observed in biological systems. Magnetic materials have been proposed as potential agents to provide hydrogels with the anisotropy required for their use on tissue engineering. Moreover, the intrinsic properties of magnetic nanoparticles enable their use as magnetomechanic remote actuators to control the behavior of the cells encapsulated within the hydrogels under the application of external magnetic fields. In this review, we combine a detailed summary of the main strategies to prepare magnetic nanoparticles showing controlled properties with an analysis of the different approaches available to their incorporation into hydrogels. The application of magnetically-responsive nanocomposite hydrogels in the engineering of different tissues is also reviewed.

JournalACS Nano
Issue15
Pagination175-209
Date Published2021-01-06
PublisherACS
ISSN1936-086X
DOI10.1021/acsnano.0c08253
URLhttps://pubs.acs.org/doi/10.1021/acsnano.0c08253
KeywordsAnisotropy, magnetic field configuration, Magnetic nanoparticles, magnetically-responsive hydrogels, magnetomechanical stimulation, Nanocomposite Hydrogels, regenerative medicine, remote actuation, Tissue engineering
RightsopenAccess
Peer reviewedyes
Statuspublished

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