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Creation of Grooved Tissue Engineering Scaffolds from Architectured Multilayer Polymer Composites by a Tuneable One‐Step Degradation Process

Article dans une revue avec comité de lecture
Auteur
MUTHU VIGNESH, VELLAYAPPAN
1095400 Department of Materials Science and Engineering [Monash University] [MSE]
FRANCISCO, DUARTE
1095400 Department of Materials Science and Engineering [Monash University] [MSE]
ccCYRILLE, SOLLOGOUB
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
ccJUSTIN, DIRRENBERGER
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
GUINAULT, Alain
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]
FRITH, Jessica E.
1095400 Department of Materials Science and Engineering [Monash University] [MSE]
PARKINGTON, Helena C.
569690 Monash Biomedicine Discovery Institute
MOLOTNIKOV, Andrey
302133 Royal Melbourne Institute of Technology University [RMIT University]
419018 Monash University [Clayton]
ccCAMERON, Neil
1095400 Department of Materials Science and Engineering [Monash University] [MSE]

URI
http://hdl.handle.net/10985/26074
DOI
10.1002/smll.202401902
Date
2024-07
Journal
Small

Résumé

The surface properties of biomaterials interact directly with biological systems, influencing cellular responses, tissue integration, and biocompatibility. Surface topography plays a critical role in cardiac tissue engineering by affecting electrical conductivity, cardiomyocyte alignment, and contractile function. Current methods for controlling surface properties and topography in cardiac tissue engineering scaffolds are limited, expensive, and lack precision. This study introduces a low‐cost, one‐step degradation process to create scaffolds with well‐defined micro‐grooves from multilayered 3D printed poly(lactic acid)/thermoplastic polyurethane composites. The approach provides control over erosion rate and surface morphology, allowing easy tuning of scaffold topographical cues for tissue engineering applications. The findings reported in this study provide a library of easily tuneable scaffold topographical cues. A strong dependence of neonatal rat cardiomyocyte (NRCM) contact guidance with the multilayers' dimension and shape in partially degraded polylactic acid (PLA)/thermoplastic polyurethane (TPU) samples is observed. NRCMs cultured on samples with a layer thickness of 13 ± 2 µm and depth of 4.7 ± 0.2 µm demonstrate the most regular contractions. Hence, the proposed fabrication scheme can be used to produce a new generation of biomaterials with excellent controllability determined by multilayer thickness, printing parameters, and degradation treatment duration.

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Documents liés

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  • Fabrication of Architectured Biomaterials by Multilayer Co‐Extrusion and Additive Manufacturing 
    Article dans une revue avec comité de lecture
    ccVELLAYAPPAN, Muthu Vignesh; DUARTE, Francisco; ccSOLLOGOUB, Cyrille; ccDIRRENBERGER, Justin; ccALAIN, Guinault; FRITH, Jessica E.; PARKINGTON, Helena C.; MOLOTNIKOV, Andrey; ccCAMERON, Neil (Wiley, 2023-04-17)
    Tissue engineering benefits from advances in 3D printing and multi‐material assembly to attain certain functional benefits over existing man‐made materials. Multilayered tissue engineering constructs might unlock a unique ...
  • Computational Investigation of the Effective Mechanical Behavior for 3D Pre-Buckled Auxetic Lattices 
    Article dans une revue avec comité de lecture
    ccALBERTINI, Frédéric; DIRRENBERGER, Justin; MOLOTNIKOV, Andrey; SOLLOGOUB, Cyrille (American Society of Mechanical Engineers, 2019)
    Negative Poisson’s ratio materials, or auxetics, have drawn attention for the past 30 years. The auxetic effect could lead to improved mechanical properties such as acoustic damping, indentation resistance, or crashworthiness. ...
  • Experimental and computational analysis of the mechanical properties of composite auxetic lattice structures 
    Article dans une revue avec comité de lecture
    ccALBERTINI, Frédéric; DIRRENBERGER, Justin; SOLLOGOUB, Cyrille; MACONACHIE, Tobias; LEARY, Martin; MOLOTNIKOV, Andrey (Elsevier BV, 2021-09-25)
    In this work, the influence of a compliant hyperelastic polymeric phase infiltrated inside stiff auxetic lattices is studied through experimental and numerical approaches. Samples were fabricated using material jetting ...
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    Article dans une revue avec comité de lecture
    BIRONEAU, Adrien; DIRRENBERGER, Justin; SOLLOGOUB, Cyrille; MIQUELARD-GARNIER, Guillaume; ccROLAND, Sébastien (Wiley, 2016)
    The size of representative microstructural samples obtained from atomic force microscopy is addressed in this paper. The case of an archetypal one-dimensional nanolayered polymer blend is considered. Image analysis is ...
  • Additive Manufacturing for the Development of an Assembling System for Gridshells 
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    GAUDILLIÈRE, Nadja; DIRRENBERGER, Justin; BAVEREL, Olivier; SOLLOGOUB, Cyrille (RVTR Design Research Group, 2015)
    This project results from the collaboration of architects, structural and material scientists. It consists in a multidisciplinary, collective design method, based on the deep relations between material selection, process ...

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