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In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis

The healing of load-bearing segmental defects in long bones is a challenge due to the complex nature of the weight that affects the bone part and due to bending, shearing, axial, and torsional forces. An innovative porous 3D scaffolds implant of CaCO(3) aragonite nanocomposite derived from cockle sh...

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Autores principales: Mahmood, Saffanah Khuder, Razak, Intan-Shameha Abdul, Ghaji, Mustafa Saddam, Yusof, Loqman Mohamed, Mahmood, Zaid Khudhur, Rameli, Mohd Adha Bin P, Zakaria, Zuki Abu Bakar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5716328/
https://www.ncbi.nlm.nih.gov/pubmed/29238193
http://dx.doi.org/10.2147/IJN.S145663
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author Mahmood, Saffanah Khuder
Razak, Intan-Shameha Abdul
Ghaji, Mustafa Saddam
Yusof, Loqman Mohamed
Mahmood, Zaid Khudhur
Rameli, Mohd Adha Bin P
Zakaria, Zuki Abu Bakar
author_facet Mahmood, Saffanah Khuder
Razak, Intan-Shameha Abdul
Ghaji, Mustafa Saddam
Yusof, Loqman Mohamed
Mahmood, Zaid Khudhur
Rameli, Mohd Adha Bin P
Zakaria, Zuki Abu Bakar
author_sort Mahmood, Saffanah Khuder
collection PubMed
description The healing of load-bearing segmental defects in long bones is a challenge due to the complex nature of the weight that affects the bone part and due to bending, shearing, axial, and torsional forces. An innovative porous 3D scaffolds implant of CaCO(3) aragonite nanocomposite derived from cockle shell was advanced for substitute bone solely for load-bearing cases. The biomechanical characteristics of such materials were designed to withstand cortical bone strength. In promoting bone growth to the implant material, an ideal surface permeability was formed by means of freeze drying and by adding copolymers to the materials. The properties of coating and copolymers supplement were also assessed for bone-implant connection resolutions. To examine the properties of the material in advanced biological system, an experimental trial in an animal model was carried out. Critical sized defect of bone was created in rabbit’s radial bone to assess the material for a load-bearing application with a short and extended period assessment with histological evaluation of the incorporated implanted material to the bone of the host. Trials in animal models proved that the material has the capability of enduring load-bearing conditions for long-term use devoid of breaking or generating stress that affects the host bone. Histological examination further confirmed the improved integration of the implanted materials to the host bone with profound bone development into and also above the implanted scaffold, which was attained with negligible reaction of the tissues to a foreign implanted material.
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spelling pubmed-57163282017-12-13 In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis Mahmood, Saffanah Khuder Razak, Intan-Shameha Abdul Ghaji, Mustafa Saddam Yusof, Loqman Mohamed Mahmood, Zaid Khudhur Rameli, Mohd Adha Bin P Zakaria, Zuki Abu Bakar Int J Nanomedicine Original Research The healing of load-bearing segmental defects in long bones is a challenge due to the complex nature of the weight that affects the bone part and due to bending, shearing, axial, and torsional forces. An innovative porous 3D scaffolds implant of CaCO(3) aragonite nanocomposite derived from cockle shell was advanced for substitute bone solely for load-bearing cases. The biomechanical characteristics of such materials were designed to withstand cortical bone strength. In promoting bone growth to the implant material, an ideal surface permeability was formed by means of freeze drying and by adding copolymers to the materials. The properties of coating and copolymers supplement were also assessed for bone-implant connection resolutions. To examine the properties of the material in advanced biological system, an experimental trial in an animal model was carried out. Critical sized defect of bone was created in rabbit’s radial bone to assess the material for a load-bearing application with a short and extended period assessment with histological evaluation of the incorporated implanted material to the bone of the host. Trials in animal models proved that the material has the capability of enduring load-bearing conditions for long-term use devoid of breaking or generating stress that affects the host bone. Histological examination further confirmed the improved integration of the implanted materials to the host bone with profound bone development into and also above the implanted scaffold, which was attained with negligible reaction of the tissues to a foreign implanted material. Dove Medical Press 2017-12-01 /pmc/articles/PMC5716328/ /pubmed/29238193 http://dx.doi.org/10.2147/IJN.S145663 Text en © 2017 Mahmood et al. This work is published and licensed by Dove Medical Press Limited The full terms of this license are available at https://www.dovepress.com/terms.php and incorporate the Creative Commons Attribution – Non Commercial (unported, v3.0) License (http://creativecommons.org/licenses/by-nc/3.0/). By accessing the work you hereby accept the Terms. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Mahmood, Saffanah Khuder
Razak, Intan-Shameha Abdul
Ghaji, Mustafa Saddam
Yusof, Loqman Mohamed
Mahmood, Zaid Khudhur
Rameli, Mohd Adha Bin P
Zakaria, Zuki Abu Bakar
In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title_full In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title_fullStr In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title_full_unstemmed In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title_short In vivo evaluation of a novel nanocomposite porous 3D scaffold in a rabbit model: histological analysis
title_sort in vivo evaluation of a novel nanocomposite porous 3d scaffold in a rabbit model: histological analysis
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5716328/
https://www.ncbi.nlm.nih.gov/pubmed/29238193
http://dx.doi.org/10.2147/IJN.S145663
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