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Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue

In vivo, articular cartilage tissue is surrounded by a cartilage membrane, and hydrostatic pressure (HP) and compressive strain increase simultaneously with the compressive stress. However, it has been impossible to investigate the effects of simultaneous loading in vitro. In this study, a bioreacto...

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Autores principales: Chang, Minki, Takahashi, Yosuke, Miyahira, Kyosuke, Omuro, Yuma, Montagne, Kevin, Yamada, Ryusei, Gondo, Junki, Kambe, Yu, Yasuno, Masashi, Masumoto, Noriyasu, Ushida, Takashi, Furukawa, Katsuko S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456493/
https://www.ncbi.nlm.nih.gov/pubmed/37630168
http://dx.doi.org/10.3390/mi14081632
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author Chang, Minki
Takahashi, Yosuke
Miyahira, Kyosuke
Omuro, Yuma
Montagne, Kevin
Yamada, Ryusei
Gondo, Junki
Kambe, Yu
Yasuno, Masashi
Masumoto, Noriyasu
Ushida, Takashi
Furukawa, Katsuko S.
author_facet Chang, Minki
Takahashi, Yosuke
Miyahira, Kyosuke
Omuro, Yuma
Montagne, Kevin
Yamada, Ryusei
Gondo, Junki
Kambe, Yu
Yasuno, Masashi
Masumoto, Noriyasu
Ushida, Takashi
Furukawa, Katsuko S.
author_sort Chang, Minki
collection PubMed
description In vivo, articular cartilage tissue is surrounded by a cartilage membrane, and hydrostatic pressure (HP) and compressive strain increase simultaneously with the compressive stress. However, it has been impossible to investigate the effects of simultaneous loading in vitro. In this study, a bioreactor capable of applying compressive stress under HP was developed to reproduce ex vivo the same physical loading environment found in cartilage. First, a HP stimulation unit was constructed to apply a cyclic HP pressure-resistant chamber by controlling a pump and valve. A compression-loading mechanism that can apply compressive stress using an electromagnetic force was implemented in the chamber. The synchronization between the compression and HP units was evaluated, and the stimulation parameters were quantitatively evaluated. Physiological HP and compressive strain were applied to the chondrocytes encapsulated in alginate and gelatin gels after applying high HP at 25 MPa, which induced damage to the chondrocytes. It was found that compressive stimulation increased the expression of genes related to osteoarthritis. Furthermore, the simultaneous application of compressive strain and HP, which is similar to the physiological environment in cartilage, had an inhibitory effect on the expression of genes related to osteoarthritis. HP alone also suppressed the expression of osteoarthritis-related genes. Therefore, the simultaneous hydrostatic and compressive stress-loading device developed to simulate the mechanical environment in vivo may be an important tool for elucidating the mechanisms of disease onset and homeostasis in cartilage.
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spelling pubmed-104564932023-08-26 Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue Chang, Minki Takahashi, Yosuke Miyahira, Kyosuke Omuro, Yuma Montagne, Kevin Yamada, Ryusei Gondo, Junki Kambe, Yu Yasuno, Masashi Masumoto, Noriyasu Ushida, Takashi Furukawa, Katsuko S. Micromachines (Basel) Article In vivo, articular cartilage tissue is surrounded by a cartilage membrane, and hydrostatic pressure (HP) and compressive strain increase simultaneously with the compressive stress. However, it has been impossible to investigate the effects of simultaneous loading in vitro. In this study, a bioreactor capable of applying compressive stress under HP was developed to reproduce ex vivo the same physical loading environment found in cartilage. First, a HP stimulation unit was constructed to apply a cyclic HP pressure-resistant chamber by controlling a pump and valve. A compression-loading mechanism that can apply compressive stress using an electromagnetic force was implemented in the chamber. The synchronization between the compression and HP units was evaluated, and the stimulation parameters were quantitatively evaluated. Physiological HP and compressive strain were applied to the chondrocytes encapsulated in alginate and gelatin gels after applying high HP at 25 MPa, which induced damage to the chondrocytes. It was found that compressive stimulation increased the expression of genes related to osteoarthritis. Furthermore, the simultaneous application of compressive strain and HP, which is similar to the physiological environment in cartilage, had an inhibitory effect on the expression of genes related to osteoarthritis. HP alone also suppressed the expression of osteoarthritis-related genes. Therefore, the simultaneous hydrostatic and compressive stress-loading device developed to simulate the mechanical environment in vivo may be an important tool for elucidating the mechanisms of disease onset and homeostasis in cartilage. MDPI 2023-08-18 /pmc/articles/PMC10456493/ /pubmed/37630168 http://dx.doi.org/10.3390/mi14081632 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chang, Minki
Takahashi, Yosuke
Miyahira, Kyosuke
Omuro, Yuma
Montagne, Kevin
Yamada, Ryusei
Gondo, Junki
Kambe, Yu
Yasuno, Masashi
Masumoto, Noriyasu
Ushida, Takashi
Furukawa, Katsuko S.
Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title_full Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title_fullStr Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title_full_unstemmed Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title_short Simultaneous Hydrostatic and Compressive Loading System for Mimicking the Mechanical Environment of Living Cartilage Tissue
title_sort simultaneous hydrostatic and compressive loading system for mimicking the mechanical environment of living cartilage tissue
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10456493/
https://www.ncbi.nlm.nih.gov/pubmed/37630168
http://dx.doi.org/10.3390/mi14081632
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