Physio-mechanical and Biological Effects Due to Surface Area Modifications of 3D Printed β-tri- calcium phosphate: An In Vitro Study - 27/08/22

Doi : 10.1016/j.stlm.2022.100078 
Leticia Arbex, MSci a, Vasudev Vivekanand Nayak, MSci a, b, John L. Ricci, PhD a, Dindo Mijares, DDS, MSci a, James E. Smay, PhD c, Paulo G. Coelho, MD, DDS, PhD, MBA d, Lukasz Witek, MSci, PhD a, e,
a Biomaterials Division - Department of Molecular Pathobiology, New York University College of Dentistry, New York, NY 
b Department of Mechanical and Aerospace Engineering, New York University Tandon School of Engineering, Brooklyn, NY 
c School of Materials Science and Engineering, Oklahoma State University, Tulsa, OK 
d Department of Surgery, University of Miami Miller School of Medicine, Miami, Florida, USA 
e Department of Biomedical Engineering, New York University Tandon School of Engineering, Brooklyn, NY 

Corresponding Author: Lukasz Witek MSci, PhD; Biomaterials Division - Department of Molecular Pathobiology, New York University College of Dentistry, 433 1st Ave, Room 708, New York, NYNew York University College of DentistryDivision of Biomaterials433 1st Ave, Room 842New YorkNY

Bienvenue sur EM-consulte, la référence des professionnels de santé.
Article gratuit.

Connectez-vous pour en bénéficier!

Abstract

Bone defects are associated with trauma, congenital disorders, non-unions, or infections following surgical procedures. Defects which are unable to heal spontaneously are categorized as “critical sized” and are commonly treated using bone grafts in an effort to facilitate bone regeneration and stabilization. Grafting materials can be either natural or synthetic, each having their respective advantages and disadvantages. Synthetic bone grafts are favored due to their ability to be tailored to exhibit desired properties and geometric configurations. β-tricalcium phosphate (β-TCP) is a synthetic grafting material that has been widely utilized for regenerative purposes due to its favorable osteoconductive properties. In combination with 3D printing, grafting materials can be further customized with respect to their macro and micro features. One way to customize devices is by using 3D printing and varying the surface area, by varying the internal component measurements. The objective of this study was to compare the effect of porosity and surface area of 3D printed β-TCP scaffolds with different strut diameters and the effect on cell proliferation in vitro. ß-TCP scaffolds were printed using a custom-built 3D direct-write micro printer with syringes equipped with different extrusion tip diameters (fdiameter: 200 µm, 250 µm and 330 µm). After sintering and post processing, scaffolds were subjected to micro-computed tomography (µCT) and a Scanning Electron Microscope (SEM) to evaluate surface area and porosity, respectively. Compressive strength was assessed using a universal testing machine. Cell proliferation was assessed through cellular viability, using human osteoprogenitor cells. The surface area of the scaffolds was found to increase with smaller strut diameters. Statistically significant differences (p<0.05) were detected for cellular proliferation, between the smallest extrusion diameter, 200 μm, and the largest diameter, 330 μm, after 48-, 72-, and 168-hours. No statistical significances were detected (p>0.05) with regards to the mechanical properties between groups. This study demonstrated that a smaller diameter rod yielded a higher surface area resulting in increased levels of cellular proliferation. Therefore, tailoring rod dimensions has the capacity to enhance cellular adhesion and ultimately, proliferation.

Le texte complet de cet article est disponible en PDF.

Keywords : bone tissue engineering, 3D printing, scaffold, biomaterials

Abbreviations : BTE, β-TCP, 3D, DICOM


Plan


© 2022  The Author(s). Publié par Elsevier Masson SAS. Tous droits réservés.
Ajouter à ma bibliothèque Retirer de ma bibliothèque Imprimer
Export

    Export citations

  • Fichier

  • Contenu

Vol 8

Article 100078- octobre 2022 Retour au numéro
Article précédent Article précédent
  • Patient-specific hydrogel phantoms for the preoperative simulation of nephron-sparing surgery in Wilms’ tumor patients: A feasibility study
  • Matthijs Fitski, Cornelis P. van de Ven, Caroline C.C. Hulsker, Guus M.J. Bökkerink, Cecilia E.J. Terwisscha van Scheltinga, Marry M. van den Heuvel-Eibrink, Annelies M.C. Mavinkurve-Groothuis, Martine van Grotel, Marc H.W.A. Wijnen, Aart J. Klijn, Alida F.W. van der Steeg
| Article suivant Article suivant
  • A radiographic analysis of common 3D print materials and assessment of their fidelity within vertebral models
  • Michael W. Pullen, Robert A. Pooley, James M. Kofler, Fidel Valero-Moreno, Andres Ramos-Fresnedo, Ricardo A. Domingo, Carlos Perez-Vega, W. Christopher Fox, Sukhwinder Johnny S Sandhu, Alfredo Quinones-Hinojosa, Ian A. Buchanan

Bienvenue sur EM-consulte, la référence des professionnels de santé.

Mon compte


Plateformes Elsevier Masson

Déclaration CNIL

EM-CONSULTE.COM est déclaré à la CNIL, déclaration n° 1286925.

En application de la loi nº78-17 du 6 janvier 1978 relative à l'informatique, aux fichiers et aux libertés, vous disposez des droits d'opposition (art.26 de la loi), d'accès (art.34 à 38 de la loi), et de rectification (art.36 de la loi) des données vous concernant. Ainsi, vous pouvez exiger que soient rectifiées, complétées, clarifiées, mises à jour ou effacées les informations vous concernant qui sont inexactes, incomplètes, équivoques, périmées ou dont la collecte ou l'utilisation ou la conservation est interdite.
Les informations personnelles concernant les visiteurs de notre site, y compris leur identité, sont confidentielles.
Le responsable du site s'engage sur l'honneur à respecter les conditions légales de confidentialité applicables en France et à ne pas divulguer ces informations à des tiers.


Tout le contenu de ce site: Copyright © 2025 Elsevier, ses concédants de licence et ses contributeurs. Tout les droits sont réservés, y compris ceux relatifs à l'exploration de textes et de données, a la formation en IA et aux technologies similaires. Pour tout contenu en libre accès, les conditions de licence Creative Commons s'appliquent.