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Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation

Various ball and socket-type designs of cervical artificial discs are in use or under investigation. Many artificial disc designs claim to restore the normal kinematics of the cervical spine. What differentiates one type of design from another design is currently not well understood. In this study,...

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Autores principales: Faizan, Ahmad, Goel, Vijay K., Garfin, Steven R., Bono, Christopher M., Serhan, Hassan, Biyani, Ashok, Elgafy, Hossein, Krishna, Manoj, Friesem, Tai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer-Verlag 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3377801/
https://www.ncbi.nlm.nih.gov/pubmed/19936805
http://dx.doi.org/10.1007/s00586-009-1211-6
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author Faizan, Ahmad
Goel, Vijay K.
Garfin, Steven R.
Bono, Christopher M.
Serhan, Hassan
Biyani, Ashok
Elgafy, Hossein
Krishna, Manoj
Friesem, Tai
author_facet Faizan, Ahmad
Goel, Vijay K.
Garfin, Steven R.
Bono, Christopher M.
Serhan, Hassan
Biyani, Ashok
Elgafy, Hossein
Krishna, Manoj
Friesem, Tai
author_sort Faizan, Ahmad
collection PubMed
description Various ball and socket-type designs of cervical artificial discs are in use or under investigation. Many artificial disc designs claim to restore the normal kinematics of the cervical spine. What differentiates one type of design from another design is currently not well understood. In this study, authors examined various clinically relevant parameters using a finite element model of C3–C7 cervical spine to study the effects of variations of ball and socket disc designs. Four variations of ball and socket-type artificial disc were placed at the C5–C6 level in an experimentally validated finite element model. Biomechanical effects of the shape (oval vs. spherical ball) and location (inferior vs. superior ball) were studied in detail. Range of motion, facet loading, implant stresses and capsule ligament strains were computed to investigate the influence of disc designs on resulting biomechanics. Motions at the implant level tended to increase following disc replacement. No major kinematic differences were observed among the disc designs tested. However, implant stresses were substantially higher in the spherical designs when compared to the oval designs. For both spherical and oval designs, the facet loads were lower for the designs with an inferior ball component. The capsule ligament strains were lower for the oval design with an inferior ball component. Overall, the oval design with an inferior ball component, produced motion, facet loads, implant stresses and capsule ligament strains closest to the intact spine, which may be key to long-term implant survival.
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spelling pubmed-33778012012-07-03 Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation Faizan, Ahmad Goel, Vijay K. Garfin, Steven R. Bono, Christopher M. Serhan, Hassan Biyani, Ashok Elgafy, Hossein Krishna, Manoj Friesem, Tai Eur Spine J Original Article Various ball and socket-type designs of cervical artificial discs are in use or under investigation. Many artificial disc designs claim to restore the normal kinematics of the cervical spine. What differentiates one type of design from another design is currently not well understood. In this study, authors examined various clinically relevant parameters using a finite element model of C3–C7 cervical spine to study the effects of variations of ball and socket disc designs. Four variations of ball and socket-type artificial disc were placed at the C5–C6 level in an experimentally validated finite element model. Biomechanical effects of the shape (oval vs. spherical ball) and location (inferior vs. superior ball) were studied in detail. Range of motion, facet loading, implant stresses and capsule ligament strains were computed to investigate the influence of disc designs on resulting biomechanics. Motions at the implant level tended to increase following disc replacement. No major kinematic differences were observed among the disc designs tested. However, implant stresses were substantially higher in the spherical designs when compared to the oval designs. For both spherical and oval designs, the facet loads were lower for the designs with an inferior ball component. The capsule ligament strains were lower for the oval design with an inferior ball component. Overall, the oval design with an inferior ball component, produced motion, facet loads, implant stresses and capsule ligament strains closest to the intact spine, which may be key to long-term implant survival. Springer-Verlag 2009-11-21 2012-06 /pmc/articles/PMC3377801/ /pubmed/19936805 http://dx.doi.org/10.1007/s00586-009-1211-6 Text en © The Author(s) 2009 https://creativecommons.org/licenses/by-nc/4.0/ This article is distributed under the terms of the Creative Commons Attribution Noncommercial License which permits any noncommercial use, distribution, and reproduction in any medium, provided the original author(s) and source are credited.
spellingShingle Original Article
Faizan, Ahmad
Goel, Vijay K.
Garfin, Steven R.
Bono, Christopher M.
Serhan, Hassan
Biyani, Ashok
Elgafy, Hossein
Krishna, Manoj
Friesem, Tai
Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title_full Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title_fullStr Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title_full_unstemmed Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title_short Do design variations in the artificial disc influence cervical spine biomechanics? A finite element investigation
title_sort do design variations in the artificial disc influence cervical spine biomechanics? a finite element investigation
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3377801/
https://www.ncbi.nlm.nih.gov/pubmed/19936805
http://dx.doi.org/10.1007/s00586-009-1211-6
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