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Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis

Objective  Polymeric framework represent an innovative approach for implant-supported dental prostheses. However, the mechanical response of ultra-high performance polymers as frameworks for full-arch prostheses under the “all-on-four concept” remains unclear. The present study applied finite elemen...

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Autores principales: Villefort, Regina Furbino, Diamantino, Pedro Jacy Santos, Zeidler, Sandra Lúcia Ventorin von, Borges, Alexandre Luiz Souto, Silva-Concílio, Laís Regiane, Saavedra, Guilherme deSiqueira Ferreira Anzaloni, Tribst, João Paulo Mendes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Thieme Medical and Scientific Publishers Private Ltd 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8890915/
https://www.ncbi.nlm.nih.gov/pubmed/34560810
http://dx.doi.org/10.1055/s-0041-1731833
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author Villefort, Regina Furbino
Diamantino, Pedro Jacy Santos
Zeidler, Sandra Lúcia Ventorin von
Borges, Alexandre Luiz Souto
Silva-Concílio, Laís Regiane
Saavedra, Guilherme deSiqueira Ferreira Anzaloni
Tribst, João Paulo Mendes
author_facet Villefort, Regina Furbino
Diamantino, Pedro Jacy Santos
Zeidler, Sandra Lúcia Ventorin von
Borges, Alexandre Luiz Souto
Silva-Concílio, Laís Regiane
Saavedra, Guilherme deSiqueira Ferreira Anzaloni
Tribst, João Paulo Mendes
author_sort Villefort, Regina Furbino
collection PubMed
description Objective  Polymeric framework represent an innovative approach for implant-supported dental prostheses. However, the mechanical response of ultra-high performance polymers as frameworks for full-arch prostheses under the “all-on-four concept” remains unclear. The present study applied finite element analysis to examine the behavior of polyetherketoneketone (PEKK) and polyetheretherketone (PEEK) prosthetic frameworks. Materials and Methods  A three-dimensional maxillary model received four axially positioned morse-taper implants, over which a polymeric bar was simulated. The full-arch prosthesis was created from a previously reported database model, and the imported geometries were divided into a mesh composed of nodes and tetrahedral elements in the analysis software. The materials were assumed as isotropic, elastic, and homogeneous, and all contacts were considered bonded. A normal load (500 N magnitude) was applied at the occlusal surface of the first left molar after the model was fixed at the base of the cortical bone. The microstrain and von-Mises stress were selected as criteria for analysis. Results  Similarities in the mechanical response were observed in both framework for the peri-implant tissue, as well as for stress generated in the implants (263–264 MPa) and abutments (274–273 MPa). The prosthetic screw and prosthetic base concentrated more stress with PEEK (211 and 58 MPa, respectively) than with PEKK (192 and 49 MPa), while the prosthetic framework showed the opposite behavior (59 MPa for PEEK and 67 MPa for PEKK). Conclusion  The main differences related to the mechanical behavior of PEKK and PEEK frameworks for full-arch prostheses under the “all-on-four concept” were reflected in the prosthetic screw and the acrylic base. The superior shock absorbance of PEKK resulted in a lower stress concentration on the prosthetic screw and prosthetic base. This would clinically represent a lower fracture risk on the acrylic base and screw loosening. Conversely, lower stress concentration was observed on PEEK frameworks.
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spelling pubmed-88909152022-03-03 Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis Villefort, Regina Furbino Diamantino, Pedro Jacy Santos Zeidler, Sandra Lúcia Ventorin von Borges, Alexandre Luiz Souto Silva-Concílio, Laís Regiane Saavedra, Guilherme deSiqueira Ferreira Anzaloni Tribst, João Paulo Mendes Eur J Dent Objective  Polymeric framework represent an innovative approach for implant-supported dental prostheses. However, the mechanical response of ultra-high performance polymers as frameworks for full-arch prostheses under the “all-on-four concept” remains unclear. The present study applied finite element analysis to examine the behavior of polyetherketoneketone (PEKK) and polyetheretherketone (PEEK) prosthetic frameworks. Materials and Methods  A three-dimensional maxillary model received four axially positioned morse-taper implants, over which a polymeric bar was simulated. The full-arch prosthesis was created from a previously reported database model, and the imported geometries were divided into a mesh composed of nodes and tetrahedral elements in the analysis software. The materials were assumed as isotropic, elastic, and homogeneous, and all contacts were considered bonded. A normal load (500 N magnitude) was applied at the occlusal surface of the first left molar after the model was fixed at the base of the cortical bone. The microstrain and von-Mises stress were selected as criteria for analysis. Results  Similarities in the mechanical response were observed in both framework for the peri-implant tissue, as well as for stress generated in the implants (263–264 MPa) and abutments (274–273 MPa). The prosthetic screw and prosthetic base concentrated more stress with PEEK (211 and 58 MPa, respectively) than with PEKK (192 and 49 MPa), while the prosthetic framework showed the opposite behavior (59 MPa for PEEK and 67 MPa for PEKK). Conclusion  The main differences related to the mechanical behavior of PEKK and PEEK frameworks for full-arch prostheses under the “all-on-four concept” were reflected in the prosthetic screw and the acrylic base. The superior shock absorbance of PEKK resulted in a lower stress concentration on the prosthetic screw and prosthetic base. This would clinically represent a lower fracture risk on the acrylic base and screw loosening. Conversely, lower stress concentration was observed on PEEK frameworks. Thieme Medical and Scientific Publishers Private Ltd 2021-09-24 /pmc/articles/PMC8890915/ /pubmed/34560810 http://dx.doi.org/10.1055/s-0041-1731833 Text en The Author(s). This is an open access article published by Thieme under the terms of the Creative Commons Attribution License, permitting unrestricted use, distribution, and reproduction so long as the original work is properly cited. (https://creativecommons.org/licenses/by/4.0/). https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Villefort, Regina Furbino
Diamantino, Pedro Jacy Santos
Zeidler, Sandra Lúcia Ventorin von
Borges, Alexandre Luiz Souto
Silva-Concílio, Laís Regiane
Saavedra, Guilherme deSiqueira Ferreira Anzaloni
Tribst, João Paulo Mendes
Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title_full Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title_fullStr Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title_full_unstemmed Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title_short Mechanical Response of PEKK and PEEK As Frameworks for Implant-Supported Full-Arch Fixed Dental Prosthesis: 3D Finite Element Analysis
title_sort mechanical response of pekk and peek as frameworks for implant-supported full-arch fixed dental prosthesis: 3d finite element analysis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8890915/
https://www.ncbi.nlm.nih.gov/pubmed/34560810
http://dx.doi.org/10.1055/s-0041-1731833
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