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Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates

BACKGROUND: In the internal fixation of fractured bone by means of bone-plates fastened to the bone on its tensile surface, an on-going concern has been the excessive stress-shielding of the bone by the excessively-stiff stainless-steel plate. The compressive stress-shielding at the fracture-interfa...

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Autores principales: Ganesh, VK, Ramakrishna, K, Ghista, Dhanjoo N
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1192810/
https://www.ncbi.nlm.nih.gov/pubmed/16045807
http://dx.doi.org/10.1186/1475-925X-4-46
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author Ganesh, VK
Ramakrishna, K
Ghista, Dhanjoo N
author_facet Ganesh, VK
Ramakrishna, K
Ghista, Dhanjoo N
author_sort Ganesh, VK
collection PubMed
description BACKGROUND: In the internal fixation of fractured bone by means of bone-plates fastened to the bone on its tensile surface, an on-going concern has been the excessive stress-shielding of the bone by the excessively-stiff stainless-steel plate. The compressive stress-shielding at the fracture-interface immediately after fracture-fixation delays callus formation and bone healing. Likewise, the tensile stress-shielding of the layer of the bone underneath the plate can cause osteoporosis and decrease in tensile strength of this layer. METHOD: In order to address this problem, we propose to use stiffness-graded plates. Accordingly, we have computed (by finite-element analysis) the stress distribution in the fractured bone fixed by composite plates, whose stiffness is graded both longitudinally and transversely. RESULTS: It can be seen that the stiffness-graded composite-plates cause less stress-shielding (as an example: at 50% of the healing stage, stress at the fracture interface is compressive in nature i.e. 0.002 GPa for stainless steel plate whereas stiffness graded plates provides tensile stress of 0.002 GPa. This means that stiffness graded plate is allowing the 50% healed bone to participate in loadings). Stiffness-graded plates are more flexible, and hence permit more bending of the fractured bone. This results in higher compressive stresses induced at the fractured faces accelerate bone-healing. On the other hand, away from the fracture interface the reduced stiffness and elastic modulus of the plate causes the neutral axis of the composite structure to be lowered into the bone resulting in the higher tensile stress in the bone-layer underneath the plate, wherein is conducive to the bone preserving its tensile strength. CONCLUSION: Stiffness graded plates (with in-built variable stiffness) are deemed to offer less stress-shielding to the bone, providing higher compressive stress at the fractured interface (to induce accelerated healing) as well as higher tensile stress in the intact portion of the bone (to prevent bone remodeling and osteoporosis).
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spelling pubmed-11928102005-08-27 Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates Ganesh, VK Ramakrishna, K Ghista, Dhanjoo N Biomed Eng Online Research BACKGROUND: In the internal fixation of fractured bone by means of bone-plates fastened to the bone on its tensile surface, an on-going concern has been the excessive stress-shielding of the bone by the excessively-stiff stainless-steel plate. The compressive stress-shielding at the fracture-interface immediately after fracture-fixation delays callus formation and bone healing. Likewise, the tensile stress-shielding of the layer of the bone underneath the plate can cause osteoporosis and decrease in tensile strength of this layer. METHOD: In order to address this problem, we propose to use stiffness-graded plates. Accordingly, we have computed (by finite-element analysis) the stress distribution in the fractured bone fixed by composite plates, whose stiffness is graded both longitudinally and transversely. RESULTS: It can be seen that the stiffness-graded composite-plates cause less stress-shielding (as an example: at 50% of the healing stage, stress at the fracture interface is compressive in nature i.e. 0.002 GPa for stainless steel plate whereas stiffness graded plates provides tensile stress of 0.002 GPa. This means that stiffness graded plate is allowing the 50% healed bone to participate in loadings). Stiffness-graded plates are more flexible, and hence permit more bending of the fractured bone. This results in higher compressive stresses induced at the fractured faces accelerate bone-healing. On the other hand, away from the fracture interface the reduced stiffness and elastic modulus of the plate causes the neutral axis of the composite structure to be lowered into the bone resulting in the higher tensile stress in the bone-layer underneath the plate, wherein is conducive to the bone preserving its tensile strength. CONCLUSION: Stiffness graded plates (with in-built variable stiffness) are deemed to offer less stress-shielding to the bone, providing higher compressive stress at the fractured interface (to induce accelerated healing) as well as higher tensile stress in the intact portion of the bone (to prevent bone remodeling and osteoporosis). BioMed Central 2005-07-27 /pmc/articles/PMC1192810/ /pubmed/16045807 http://dx.doi.org/10.1186/1475-925X-4-46 Text en Copyright © 2005 Ganesh et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research
Ganesh, VK
Ramakrishna, K
Ghista, Dhanjoo N
Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title_full Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title_fullStr Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title_full_unstemmed Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title_short Biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
title_sort biomechanics of bone-fracture fixation by stiffness-graded plates in comparison with stainless-steel plates
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC1192810/
https://www.ncbi.nlm.nih.gov/pubmed/16045807
http://dx.doi.org/10.1186/1475-925X-4-46
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