Introducing Metal–Organic Frameworks to Melt Electrowriting: Multifunctional Scaffolds with Controlled Microarchitecture for Tissue Engineering Applications

Author:

Mansi Salma1ORCID,Dummert Sarah V.2ORCID,Topping Geoffrey J.3,Hussain Mian Zahid2ORCID,Rickert Carolin4ORCID,Mueller Kilian M. A.1ORCID,Kratky Tim5,Elsner Martin6ORCID,Casini Angela7ORCID,Schilling Franz3ORCID,Fischer Roland A.2ORCID,Lieleg Oliver4ORCID,Mela Petra1ORCID

Affiliation:

1. Medical Materials and Implants Department of Mechanical Engineering Munich Institute of Biomedical Engineering and TUM School of Engineering and Design Technical University of Munich Boltzmannstraße 15 85748 Garching Germany

2. Inorganic and Metal‐Organic Chemistry Department of Chemistry TUM School of Natural Sciences Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany

3. Department of Nuclear Medicine School of Medicine Klinikum rechts der Isar Technical University of Munich Ismaninger Straße 22 81675 Munich Germany

4. Biomechanics Department of Materials Engineering TUM School of Engineering and Design Technical University of Munich Ernst‐Otto‐Fischer Straße 8 85748 Garching Germany

5. Physical Chemistry with Focus on Catalysis Department of Chemistry TUM School of Natural Sciences Technical University of Munich Lichtenbergstraße 4 85748 Garching Germany

6. Chair of Analytical Chemistry and Water Chemistry School of Natural Sciences Department of Chemistry Technical University of Munich Lichtenbergstrasse 4 85748 Garching Germany

7. Chair of Medicinal and Bioinorganic Chemistry School of Natural Sciences Department of Chemistry Technical University of Munich Lichtenbergstrasse 4 85748 Garching Germany

Abstract

AbstractScaffolds with multiple advantageous biological and structural properties are still a challenge in the field of tissue engineering. The convergence of advanced fabrication techniques and functional materials is key to fulfill this need. Melt electrowriting (MEW) is an additive manufacturing technique that enables the fabrication of microfibrous scaffolds with precisely defined microarchitectures. Here, it is proposed to exploit metal–organic frameworks (MOFs) to efficiently introduce multifunctionalities by combining polycaprolactone (PCL), the gold standard material in MEW, with a silver‐/silver‐chloride‐decorated iron‐based MOF (NH2‐MIL‐88B(Fe)). This results in highly ordered constructs with antibacterial properties and magnetic resonance imaging (MRI) visibility. Scaffolds with up to 20 wt% MOF are successfully melt‐electrowritten with a fiber diameter of 50 µm. Among these, 5 wt% MOF proves to be the optimal concentration as it exhibits silver‐induced sustained antibacterial efficacy while maintaining PCL cytocompatibility and in vitro immune response. The iron component of the MOF (Fe(III) nodes) renders the composite visible with MRI, thereby enabling scaffold monitoring upon implantation with a clinically accepted method. The combination of MEW and MOFs as tunable additives and cargo carriers opens the way for designing advanced multifunctional scaffolds with a wide range of applications in, e.g., tissue engineering, biosensing and drug delivery.

Funder

Technische Universität München

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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