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Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns

In this study, metal 3D printing technology was used to create lattice-shaped test specimens of orthopedic implants to determine the effect of different lattice shapes on bone ingrowth. Six different lattice shapes were used: gyroid, cube, cylinder, tetrahedron, double pyramid, and Voronoi. The latt...

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Autores principales: Kovács, Ágnes Éva, Csernátony, Zoltán, Csámer, Loránd, Méhes, Gábor, Szabó, Dániel, Veres, Mihály, Braun, Mihály, Harangi, Balázs, Serbán, Norbert, Zhang, Lei, Falk, György, Soósné Horváth, Hajnalka, Manó, Sándor
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223620/
https://www.ncbi.nlm.nih.gov/pubmed/37241487
http://dx.doi.org/10.3390/ma16103861
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author Kovács, Ágnes Éva
Csernátony, Zoltán
Csámer, Loránd
Méhes, Gábor
Szabó, Dániel
Veres, Mihály
Braun, Mihály
Harangi, Balázs
Serbán, Norbert
Zhang, Lei
Falk, György
Soósné Horváth, Hajnalka
Manó, Sándor
author_facet Kovács, Ágnes Éva
Csernátony, Zoltán
Csámer, Loránd
Méhes, Gábor
Szabó, Dániel
Veres, Mihály
Braun, Mihály
Harangi, Balázs
Serbán, Norbert
Zhang, Lei
Falk, György
Soósné Horváth, Hajnalka
Manó, Sándor
author_sort Kovács, Ágnes Éva
collection PubMed
description In this study, metal 3D printing technology was used to create lattice-shaped test specimens of orthopedic implants to determine the effect of different lattice shapes on bone ingrowth. Six different lattice shapes were used: gyroid, cube, cylinder, tetrahedron, double pyramid, and Voronoi. The lattice-structured implants were produced from Ti6Al4V alloy using direct metal laser sintering 3D printing technology with an EOS M290 printer. The implants were implanted into the femoral condyles of sheep, and the animals were euthanized 8 and 12 weeks after surgery. To determine the degree of bone ingrowth for different lattice-shaped implants, mechanical, histological, and image processing tests on ground samples and optical microscopic images were performed. In the mechanical test, the force required to compress the different lattice-shaped implants and the force required for a solid implant were compared, and significant differences were found in several instances. Statistically evaluating the results of our image processing algorithm, it was found that the digitally segmented areas clearly consisted of ingrown bone tissue; this finding is also supported by the results of classical histological processing. Our main goal was realized, so the bone ingrowth efficiencies of the six lattice shapes were ranked. It was found that the gyroid, double pyramid, and cube-shaped lattice implants had the highest degree of bone tissue growth per unit time. This ranking of the three lattice shapes remained the same at both 8 and 12 weeks after euthanasia. In accordance with the study, as a side project, a new image processing algorithm was developed that proved suitable for determining the degree of bone ingrowth in lattice implants from optical microscopic images. Along with the cube lattice shape, whose high bone ingrowth values have been previously reported in many studies, it was found that the gyroid and double pyramid lattice shapes produced similarly good results.
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spelling pubmed-102236202023-05-28 Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns Kovács, Ágnes Éva Csernátony, Zoltán Csámer, Loránd Méhes, Gábor Szabó, Dániel Veres, Mihály Braun, Mihály Harangi, Balázs Serbán, Norbert Zhang, Lei Falk, György Soósné Horváth, Hajnalka Manó, Sándor Materials (Basel) Article In this study, metal 3D printing technology was used to create lattice-shaped test specimens of orthopedic implants to determine the effect of different lattice shapes on bone ingrowth. Six different lattice shapes were used: gyroid, cube, cylinder, tetrahedron, double pyramid, and Voronoi. The lattice-structured implants were produced from Ti6Al4V alloy using direct metal laser sintering 3D printing technology with an EOS M290 printer. The implants were implanted into the femoral condyles of sheep, and the animals were euthanized 8 and 12 weeks after surgery. To determine the degree of bone ingrowth for different lattice-shaped implants, mechanical, histological, and image processing tests on ground samples and optical microscopic images were performed. In the mechanical test, the force required to compress the different lattice-shaped implants and the force required for a solid implant were compared, and significant differences were found in several instances. Statistically evaluating the results of our image processing algorithm, it was found that the digitally segmented areas clearly consisted of ingrown bone tissue; this finding is also supported by the results of classical histological processing. Our main goal was realized, so the bone ingrowth efficiencies of the six lattice shapes were ranked. It was found that the gyroid, double pyramid, and cube-shaped lattice implants had the highest degree of bone tissue growth per unit time. This ranking of the three lattice shapes remained the same at both 8 and 12 weeks after euthanasia. In accordance with the study, as a side project, a new image processing algorithm was developed that proved suitable for determining the degree of bone ingrowth in lattice implants from optical microscopic images. Along with the cube lattice shape, whose high bone ingrowth values have been previously reported in many studies, it was found that the gyroid and double pyramid lattice shapes produced similarly good results. MDPI 2023-05-20 /pmc/articles/PMC10223620/ /pubmed/37241487 http://dx.doi.org/10.3390/ma16103861 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Kovács, Ágnes Éva
Csernátony, Zoltán
Csámer, Loránd
Méhes, Gábor
Szabó, Dániel
Veres, Mihály
Braun, Mihály
Harangi, Balázs
Serbán, Norbert
Zhang, Lei
Falk, György
Soósné Horváth, Hajnalka
Manó, Sándor
Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title_full Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title_fullStr Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title_full_unstemmed Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title_short Comparative Analysis of Bone Ingrowth in 3D-Printed Titanium Lattice Structures with Different Patterns
title_sort comparative analysis of bone ingrowth in 3d-printed titanium lattice structures with different patterns
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10223620/
https://www.ncbi.nlm.nih.gov/pubmed/37241487
http://dx.doi.org/10.3390/ma16103861
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