TY - JOUR
T1 - Preparation of mineralized pericardium by alternative soaking for soft–hard interregional tissue application
AU - Suzuki, Mika
AU - Kimura, Tsuyoshi
AU - Nakano, Yuta
AU - Kobayashi, Mako
AU - Okada, Masahiro
AU - Matsumoto, Takuya
AU - Nakamura, Naoko
AU - Hashimoto, Yoshihide
AU - Kishida, Akio
N1 - Funding Information:
This work was supported in part by the Japan Society for the Promotion of Science (JSPS) KAKENHI grant number 16H03180, 19H04465, 21H04954, the Creative Scientific Research of the Viable Material via Integration of Biology and Engineering from MEXT and the Cooperative Research Project of Research Center for Biomedical Engineering from MEXT.
Funding Information:
Japan Society for the Promotion of Science, Grant/Award Numbers: 16H03180, 19H04465, 21H04954; Ministry of Education, Culture, Sports, Science and Technology; Cooperative Research Project of Research Center for Biomedical Engineering; Creative Scientific Research of the Viable Material via Integration of Biology and Engineering Funding information
Publisher Copyright:
© 2022 Wiley Periodicals LLC.
PY - 2022
Y1 - 2022
N2 - Recent applications of decellularized tissues include the ectopic use of sheets and powders for three-dimensional (3D) tissue reconstruction. Decellularized tissues are modified (or fabricated) with the desired functions for application to the target (transplanted or used) tissue, including soft–hard interregional tissues, such as ligaments, tendons, and periodontal ligaments. This study aimed to prepare a mineralized decellularized pericardium to construct a soft-hard interregional tissue by 3D fabrication of decellularized pericardium, for example, rolling up to a cylindrical form. The decellularized pericardial tissue was prepared using the high hydrostatic pressurization (HHP) and surfactants method. The pericardium consisted of bundles of aligned fibers, and the bundles were slightly disordered when prepared with the surfactant decellularization method compared with that prepared using the HHP decellularization method. Mineralization of the decellularized pericardium was performed using an alternate soaking process with various cycles. The surface of the decellularized pericardium was covered with calcium phosphate precipitates, which accumulated on the surface with an increasing number of soaking cycles. The inside of the HHP decellularized pericardium was mineralized uniformly, whereas the mineralization of the decellularized pericardium decreased toward the interior. These findings suggest that the decellularization method strongly affects the structure and mineralized parts of the decellularized pericardium. The mineralized decellularized pericardium could be a candidate material for reconstructing alternative interregional tissues, such as ligaments and tendons.
AB - Recent applications of decellularized tissues include the ectopic use of sheets and powders for three-dimensional (3D) tissue reconstruction. Decellularized tissues are modified (or fabricated) with the desired functions for application to the target (transplanted or used) tissue, including soft–hard interregional tissues, such as ligaments, tendons, and periodontal ligaments. This study aimed to prepare a mineralized decellularized pericardium to construct a soft-hard interregional tissue by 3D fabrication of decellularized pericardium, for example, rolling up to a cylindrical form. The decellularized pericardial tissue was prepared using the high hydrostatic pressurization (HHP) and surfactants method. The pericardium consisted of bundles of aligned fibers, and the bundles were slightly disordered when prepared with the surfactant decellularization method compared with that prepared using the HHP decellularization method. Mineralization of the decellularized pericardium was performed using an alternate soaking process with various cycles. The surface of the decellularized pericardium was covered with calcium phosphate precipitates, which accumulated on the surface with an increasing number of soaking cycles. The inside of the HHP decellularized pericardium was mineralized uniformly, whereas the mineralization of the decellularized pericardium decreased toward the interior. These findings suggest that the decellularization method strongly affects the structure and mineralized parts of the decellularized pericardium. The mineralized decellularized pericardium could be a candidate material for reconstructing alternative interregional tissues, such as ligaments and tendons.
KW - alternate soaking procedure
KW - decellularized pericardium
KW - high hydrostatic pressurization method
KW - mineralization
KW - surfactant method
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U2 - 10.1002/jbm.a.37445
DO - 10.1002/jbm.a.37445
M3 - Article
C2 - 36069375
AN - SCOPUS:85137603374
SN - 1549-3296
JO - Journal of Biomedical Materials Research - Part A
JF - Journal of Biomedical Materials Research - Part A
ER -