Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs

Stress adaptation in femoral bone is an important indicator to predict bone behavior and remodeling after arthroplasty, computationally. Presence of prosthesis stem in the affected limb has created mismatching materials in the femoral shaft which alters the load distribution. The changes arc not onl...

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Published in:Evergreen
Main Author: Abdullah A.H.; Todo M.
Format: Article
Language:English
Published: Novel Carbon Resource Sciences 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85019634906&doi=10.5109%2f1500422&partnerID=40&md5=32508af65f4adf9ceb194545968d07d5
id 2-s2.0-85019634906
spelling 2-s2.0-85019634906
Abdullah A.H.; Todo M.
Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
2015
Evergreen
2
1
10.5109/1500422
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85019634906&doi=10.5109%2f1500422&partnerID=40&md5=32508af65f4adf9ceb194545968d07d5
Stress adaptation in femoral bone is an important indicator to predict bone behavior and remodeling after arthroplasty, computationally. Presence of prosthesis stem in the affected limb has created mismatching materials in the femoral shaft which alters the load distribution. The changes arc not only reflected on the operated limb but also to the non-opcratcd limb as well. In this study, biomechanical evaluations of the lower limbs were established using the finite element method. Bone adaptation was predicted computationally for both limbs on the resulting principal stress and bone mineral density to predict the stress shielding and bone remodeling phenomenon. Computed tomography (CT-based) images of a 79-ycars old female patient with hip osteoarthritis were used in developing the three dimensional inhomogeneous lower limb model. Then, the affected hip joint was cut off and replaced with total hip artroplasty (THA) which consists of acetabular cup, liner, femoral ball and prosthesis stem. A distributed load of 60kg was applied in the cross sectional region of lumbar vertebra and totally fixed at the distal end of the limbs to present a quiet standing position. Results showed that the stress adaptation was predicted at both the operated and non-operated limb in THA model. The proximal region of the operated limb indicated the highest stress changes which lead to bone resorption while the distal region had a possibility of bone thickening. Findings of bone remodeling analysis also estimated high changes of bone mineral density in the operating limb over 5 years. © 2015, Novel Carbon Resource Sciences. All rights reserved.
Novel Carbon Resource Sciences
21890420
English
Article
All Open Access; Green Open Access
author Abdullah A.H.; Todo M.
spellingShingle Abdullah A.H.; Todo M.
Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
author_facet Abdullah A.H.; Todo M.
author_sort Abdullah A.H.; Todo M.
title Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
title_short Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
title_full Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
title_fullStr Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
title_full_unstemmed Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
title_sort Effects of total hip arthroplasty on stress adaptation and bone remodeling in lower limbs
publishDate 2015
container_title Evergreen
container_volume 2
container_issue 1
doi_str_mv 10.5109/1500422
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85019634906&doi=10.5109%2f1500422&partnerID=40&md5=32508af65f4adf9ceb194545968d07d5
description Stress adaptation in femoral bone is an important indicator to predict bone behavior and remodeling after arthroplasty, computationally. Presence of prosthesis stem in the affected limb has created mismatching materials in the femoral shaft which alters the load distribution. The changes arc not only reflected on the operated limb but also to the non-opcratcd limb as well. In this study, biomechanical evaluations of the lower limbs were established using the finite element method. Bone adaptation was predicted computationally for both limbs on the resulting principal stress and bone mineral density to predict the stress shielding and bone remodeling phenomenon. Computed tomography (CT-based) images of a 79-ycars old female patient with hip osteoarthritis were used in developing the three dimensional inhomogeneous lower limb model. Then, the affected hip joint was cut off and replaced with total hip artroplasty (THA) which consists of acetabular cup, liner, femoral ball and prosthesis stem. A distributed load of 60kg was applied in the cross sectional region of lumbar vertebra and totally fixed at the distal end of the limbs to present a quiet standing position. Results showed that the stress adaptation was predicted at both the operated and non-operated limb in THA model. The proximal region of the operated limb indicated the highest stress changes which lead to bone resorption while the distal region had a possibility of bone thickening. Findings of bone remodeling analysis also estimated high changes of bone mineral density in the operating limb over 5 years. © 2015, Novel Carbon Resource Sciences. All rights reserved.
publisher Novel Carbon Resource Sciences
issn 21890420
language English
format Article
accesstype All Open Access; Green Open Access
record_format scopus
collection Scopus
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