Microarchitected Compliant Scaffolds of Pyrolytic Carbon for 3D Muscle Cell Growth

Author:

Taale Mohammadreza1ORCID,Schamberger Barbara1ORCID,Monclus Miguel A.2ORCID,Dolle Christian3ORCID,Taheri Fereydoon1,Mager Dario4,Eggeler Yolita M.3ORCID,Korvink Jan G.4ORCID,Molina‐Aldareguia Jon M.25ORCID,Selhuber‐Unkel Christine1ORCID,Lantada Andrés Díaz5ORCID,Islam Monsur24ORCID

Affiliation:

1. Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University Im Neuenheimer Feld 225 69120 Heidelberg Germany

2. IMDEA Materials Institute Eric Kandel, 2 Getafe 28906 Spain

3. Microscopy of Nanoscale Structures and Mechanisms (MNM) Laboratory for Electron Microscopy (LEM) Karlsruhe Institute of Technology Engesserstr. 7 D‐76131 Karlsruhe Germany

4. Institute of Microstructure Technology Karlsruhe Institute of Technology Hermann‐von‐Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

5. Department of Mechanical Engineering Universidad Politécnica de Madrid José Gutierréz Abascal, 2 Madrid 28006 Spain

Abstract

AbstractThe integration of additive manufacturing technologies with the pyrolysis of polymeric precursors enables the design‐controlled fabrication of architected 3D pyrolytic carbon (PyC) structures with complex architectural details. Despite great promise, their use in cellular interaction remains unexplored. This study pioneers the utilization of microarchitected 3D PyC structures as biocompatible scaffolds for the colonization of muscle cells in a 3D environment. PyC scaffolds are fabricated using micro‐stereolithography, followed by pyrolysis. Furthermore, an innovative design strategy using revolute joints is employed to obtain novel, compliant structures of architected PyC. The pyrolysis process results in a pyrolysis temperature‐ and design‐geometry‐dependent shrinkage of up to 73%, enabling the geometrical features of microarchitected compatible with skeletal muscle cells. The stiffness of architected PyC varies with the pyrolysis temperature, with the highest value of 29.57 ± 0.78 GPa for 900 °C. The PyC scaffolds exhibit excellent biocompatibility and yield 3D cell colonization while culturing skeletal muscle C2C12 cells. They further induce good actin fiber alignment along the compliant PyC construction. However, no conclusive myogenic differentiation is observed here. Nevertheless, these results are highly promising for architected PyC scaffolds as multifunctional tissue implants and encourage more investigations in employing compliant architected PyC structures for high‐performance tissue engineering applications.

Funder

Deutsche Forschungsgemeinschaft

Comunidad de Madrid

Ministerio de Universidades

Volkswagen Foundation

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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