3D Printed Magneto-Active Microfiber Scaffolds for Remote Stimulation and Guided Organization of 3D In Vitro Skeletal Muscle Models

Gerardo Cedillo-Servin, Ouafa Dahri, João Meneses, Joost van Duijn, Harrison Moon, Fanny Sage, Joana Silva, André Pereira, Fernão D Magalhães, Jos Malda, Niels Geijsen, Artur M Pinto, Miguel Castilho*

*Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

This work reports the rational design and fabrication of magneto-active microfiber meshes with controlled hexagonal microstructures via melt electrowriting (MEW) of a magnetized polycaprolactone-based composite. In situ iron oxide nanoparticle deposition on oxidized graphene yields homogeneously dispersed magnetic particles with sizes above 0.5 µm and low aspect ratio, preventing cellular internalization and toxicity. With these fillers, homogeneous magnetic composites with high magnetic content (up to 20 weight %) are obtained and processed in a solvent-free manner for the first time. MEW of magnetic composites enabled the creation of skeletal muscle-inspired design of hexagonal scaffolds with tunable fiber diameter, reconfigurable modularity, and zonal distribution of magneto-active and nonactive material, with elastic tensile deformability. External magnetic fields below 300 mT are sufficient to trigger out-of-plane reversible deformation. In vitro culture of C2C12 myoblasts on three-dimensional (3D) Matrigel/collagen/MEW scaffolds showed that microfibers guided the formation of 3D myotube architectures, and the presence of magnetic particles does not significantly affect viability or differentiation rates after 8 days. Centimeter-sized skeletal muscle constructs allowed for reversible, continued, and dynamic magneto-mechanical stimulation. Overall, these innovative microfiber scaffolds provide magnetically deformable platforms suitable for dynamic culture of skeletal muscle, offering potential for in vitro disease modeling.

Original languageEnglish
Article number2307178
JournalSmall
Volume20
Issue number12
Early online date10 Nov 2023
DOIs
Publication statusPublished - 22 Mar 2024

Bibliographical note

Publisher Copyright:
© 2023 The Authors. Small published by Wiley-VCH GmbH.

Funding

FundersFunder number
European Union Horizon 2020 programOCENW.XS5.161, 874827
F.C.T.
FSHDglobal
Institute for Research and Innovation in Health i3SUIDB/04293/2020
Ministry for Science, Technology, and Higher Education
Norte Portugal Regional Operational Programme
Scientific Employment StimulusCEECIND/03908/2017
Stichting Utrecht Singelswim
UT Austin PT ProgramUTAP‐EXPL/NPN/0044/2021
Fundação para a Ciência e a Tecnologia
Nederlandse Organisatie voor Wetenschappelijk Onderzoek024.003.013
Nederlandse Organisatie voor Wetenschappelijk Onderzoek
Ministério da Ciência, Tecnologia e Ensino SuperiorUIDB/00511/2020, FCT 2022‐04494‐PTDC, LA/P/0045/2020, UIDP/00511/2020
Ministério da Ciência, Tecnologia e Ensino Superior
European Regional Development Fund2SMART (NORTE‐01‐0145‐FEDER‐000054
European Regional Development Fund
Novo Nordisk FondenNNF21CC0073729
Novo Nordisk Fonden
Programa Operacional Temático Factores de Competitividade

    Keywords

    • fiber scaffolds
    • magnetic actuation
    • melt electrowriting
    • skeletal muscle
    • stimuli responsive biomaterials

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