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Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study

Osteoporotic hip fracture is the most severe kind of fracture with high morbidity and mortality. Patients' ambulation and quality of life are significantly affected by the fracture because only 50% regain their prefracture functional status, even if they undergo surgeries. There are many issues...

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Autores principales: Luo, Qiang, Lu, William W., Lau, Tak-Wing, Leung, Frankie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Mary Ann Liebert, Inc. 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3994908/
https://www.ncbi.nlm.nih.gov/pubmed/24804167
http://dx.doi.org/10.1089/biores.2013.0036
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author Luo, Qiang
Lu, William W.
Lau, Tak-Wing
Leung, Frankie
author_facet Luo, Qiang
Lu, William W.
Lau, Tak-Wing
Leung, Frankie
author_sort Luo, Qiang
collection PubMed
description Osteoporotic hip fracture is the most severe kind of fracture with high morbidity and mortality. Patients' ambulation and quality of life are significantly affected by the fracture because only 50% regain their prefracture functional status, even if they undergo surgeries. There are many issues associated with the current preventive methods e.g., cost, side effects, patient compliance, and time for onset of action. Femoroplasty, the injection of bone cement into the proximal femur to augment femoral strength and to prevent fracture, has been an option with great potential. However, until now femoroplasty has remained at the stage of biomechanical testing. No in vivo study has evaluated its safety and effectiveness; there is not even an animal model for such investigations. The objective of this study was to develop a proximal femur fracture goat model that consistently fractures at the proximal femur when subject to vertical load, simulating osteoporotic hip fractures in human. Six pairs of fresh frozen mature Chinese goats' femora were obtained and randomly assigned into two groups. For the experimental group, a cylindrical bone defect was created at the proximal femur, while the control was left untreated. In addition, a configuration to mimic the mechanical axis of the goat femur was developed. When subjected to load along the mechanical axis, all the specimens from the bone defect group experienced femoral neck fractures, while fractures occurred at the femoral neck or other sites of the proximal femur in the control group. The biomechanical property (failure load) of the bone defect specimens was significantly lower than that of the control specimens (p<0.05). Osteoporotic hip fractures of humans were simulated by a goat fracture model, which may serve as a reference for future femoroplasty studies in vivo. The newly developed configuration simulating a femoral mechanical axis for biomechanical tests was practicable during the study.
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spelling pubmed-39949082014-05-06 Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study Luo, Qiang Lu, William W. Lau, Tak-Wing Leung, Frankie Biores Open Access Original Research Articles Osteoporotic hip fracture is the most severe kind of fracture with high morbidity and mortality. Patients' ambulation and quality of life are significantly affected by the fracture because only 50% regain their prefracture functional status, even if they undergo surgeries. There are many issues associated with the current preventive methods e.g., cost, side effects, patient compliance, and time for onset of action. Femoroplasty, the injection of bone cement into the proximal femur to augment femoral strength and to prevent fracture, has been an option with great potential. However, until now femoroplasty has remained at the stage of biomechanical testing. No in vivo study has evaluated its safety and effectiveness; there is not even an animal model for such investigations. The objective of this study was to develop a proximal femur fracture goat model that consistently fractures at the proximal femur when subject to vertical load, simulating osteoporotic hip fractures in human. Six pairs of fresh frozen mature Chinese goats' femora were obtained and randomly assigned into two groups. For the experimental group, a cylindrical bone defect was created at the proximal femur, while the control was left untreated. In addition, a configuration to mimic the mechanical axis of the goat femur was developed. When subjected to load along the mechanical axis, all the specimens from the bone defect group experienced femoral neck fractures, while fractures occurred at the femoral neck or other sites of the proximal femur in the control group. The biomechanical property (failure load) of the bone defect specimens was significantly lower than that of the control specimens (p<0.05). Osteoporotic hip fractures of humans were simulated by a goat fracture model, which may serve as a reference for future femoroplasty studies in vivo. The newly developed configuration simulating a femoral mechanical axis for biomechanical tests was practicable during the study. Mary Ann Liebert, Inc. 2014-04-01 /pmc/articles/PMC3994908/ /pubmed/24804167 http://dx.doi.org/10.1089/biores.2013.0036 Text en Copyright 2014, Mary Ann Liebert, Inc.
spellingShingle Original Research Articles
Luo, Qiang
Lu, William W.
Lau, Tak-Wing
Leung, Frankie
Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title_full Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title_fullStr Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title_full_unstemmed Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title_short Development of an Animal Fracture Model for Evaluation of Cement Augmentation Femoroplasty: An In Vitro Biomechanical Study
title_sort development of an animal fracture model for evaluation of cement augmentation femoroplasty: an in vitro biomechanical study
topic Original Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3994908/
https://www.ncbi.nlm.nih.gov/pubmed/24804167
http://dx.doi.org/10.1089/biores.2013.0036
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