Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment

onication decellularization treatment ability to efficiently decellularize meniscus tissues requires proper evaluations. The purpose of this study is to investigate the maintenance of biomechanical properties within meniscus scaffolds. In sonication decellularization treatment, tissue samples were s...

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Main Authors: Norzarini, A., Kitajima, Tatsuo, Feng, Zhonggang, Sha'ban, Munirah, Noor Azmi, Azran Azhim
Format: Article
Language:English
English
Published: American Scientific Publishers 2017
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spelling my.iium.irep.568122022-12-09T03:38:52Z http://irep.iium.edu.my/56812/ Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment Norzarini, A. Kitajima, Tatsuo Feng, Zhonggang Sha'ban, Munirah Noor Azmi, Azran Azhim QP Physiology R Medicine (General) TA Engineering (General). Civil engineering (General) onication decellularization treatment ability to efficiently decellularize meniscus tissues requires proper evaluations. The purpose of this study is to investigate the maintenance of biomechanical properties within meniscus scaffolds. In sonication decellularization treatment, tissue samples were sonicated at 40 kHz ultrasound frequency in 0.1% sodium dodecyl sulfate (SDS) for 10 h. For control, an immersion treatment by 0.1% SDS was applied in the absence of ultrasonic exposure. Cell removal efficiency was determined through a histological analysis of van Gieson staining. The treatment effects on viscoelastic properties that are crucial for scaffolds strength were properly studied. Extracellular matrix (ECM) properties were determined through Picrosirius red and Safranin-O/Fast green staining. The decellularized tissues were further evaluated by scanning electron microscopy (SEM) for its ultrastructure. The findings demonstrated a complete nuclei removal in sonication-treated tissues compared to immersion-treated tissues. Viscoelastic properties, namely stiffness, compression, and residual force were maintained after the sonication decellularization treatment. The maintenance of viscoelastic properties was supported by ECM preservation that is mainly composed of collagen and GAG contents. An ultrastructure observation showed the presence of micropores on the surface of sonication-treated tissues. The micropores are determined as chondrocytes lacunae that conserve chondrocytes within it. Sonication decellularization treatment is thus capable of preparing the meniscus scaffolds candidate in which the biomechanical strength of tissues is maintained by preserving the ECM properties. © 2017 American Scientific Publishers. All rights reserved. American Scientific Publishers 2017-03 Article PeerReviewed application/pdf en http://irep.iium.edu.my/56812/1/56812_Characterization%20based%20on%20biomechanical.pdf application/pdf en http://irep.iium.edu.my/56812/2/56812_Characterization%20based%20on%20biomechanical%20_SCOPUS.pdf Norzarini, A. and Kitajima, Tatsuo and Feng, Zhonggang and Sha'ban, Munirah and Noor Azmi, Azran Azhim (2017) Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment. Journal of Biomaterials and Tissue Engineering, 7 (3). pp. 223-232. ISSN 2157-9083 E-ISSN 2157-9091 http://www.ingentaconnect.com/contentone/asp/jbte/2017/00000007/00000003/art00005 10.1166/jbt.2017.1565
institution Universiti Islam Antarabangsa Malaysia
building IIUM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider International Islamic University Malaysia
content_source IIUM Repository (IREP)
url_provider http://irep.iium.edu.my/
language English
English
topic QP Physiology
R Medicine (General)
TA Engineering (General). Civil engineering (General)
spellingShingle QP Physiology
R Medicine (General)
TA Engineering (General). Civil engineering (General)
Norzarini, A.
Kitajima, Tatsuo
Feng, Zhonggang
Sha'ban, Munirah
Noor Azmi, Azran Azhim
Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
description onication decellularization treatment ability to efficiently decellularize meniscus tissues requires proper evaluations. The purpose of this study is to investigate the maintenance of biomechanical properties within meniscus scaffolds. In sonication decellularization treatment, tissue samples were sonicated at 40 kHz ultrasound frequency in 0.1% sodium dodecyl sulfate (SDS) for 10 h. For control, an immersion treatment by 0.1% SDS was applied in the absence of ultrasonic exposure. Cell removal efficiency was determined through a histological analysis of van Gieson staining. The treatment effects on viscoelastic properties that are crucial for scaffolds strength were properly studied. Extracellular matrix (ECM) properties were determined through Picrosirius red and Safranin-O/Fast green staining. The decellularized tissues were further evaluated by scanning electron microscopy (SEM) for its ultrastructure. The findings demonstrated a complete nuclei removal in sonication-treated tissues compared to immersion-treated tissues. Viscoelastic properties, namely stiffness, compression, and residual force were maintained after the sonication decellularization treatment. The maintenance of viscoelastic properties was supported by ECM preservation that is mainly composed of collagen and GAG contents. An ultrastructure observation showed the presence of micropores on the surface of sonication-treated tissues. The micropores are determined as chondrocytes lacunae that conserve chondrocytes within it. Sonication decellularization treatment is thus capable of preparing the meniscus scaffolds candidate in which the biomechanical strength of tissues is maintained by preserving the ECM properties. © 2017 American Scientific Publishers. All rights reserved.
format Article
author Norzarini, A.
Kitajima, Tatsuo
Feng, Zhonggang
Sha'ban, Munirah
Noor Azmi, Azran Azhim
author_facet Norzarini, A.
Kitajima, Tatsuo
Feng, Zhonggang
Sha'ban, Munirah
Noor Azmi, Azran Azhim
author_sort Norzarini, A.
title Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
title_short Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
title_full Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
title_fullStr Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
title_full_unstemmed Characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
title_sort characterization based on biomechanical properties for meniscus scaffolds by sonication decellularization treatment
publisher American Scientific Publishers
publishDate 2017
url http://irep.iium.edu.my/56812/1/56812_Characterization%20based%20on%20biomechanical.pdf
http://irep.iium.edu.my/56812/2/56812_Characterization%20based%20on%20biomechanical%20_SCOPUS.pdf
http://irep.iium.edu.my/56812/
http://www.ingentaconnect.com/contentone/asp/jbte/2017/00000007/00000003/art00005
_version_ 1752146272588922880
score 13.18916