In Vivo Tissue-Engineered valved conduit with designed Molds and laser processed scaffold

被引:9
|
作者
Hayashida, Kyoko [1 ,3 ]
Kanda, Keiichi [3 ]
Oie, Tomonori [2 ]
Okamoto, Yosihiro [4 ]
Sakai, Osamu [1 ,3 ]
Watanabe, Taiii [1 ,3 ]
Ishibashi-Ueda, Hatsue [5 ]
Onoyama, Masaaki [6 ]
Tajikawa, Tsutomu [6 ]
Ohba, Kenkichi [6 ]
Yaku, Hitoshi [3 ]
Nakayama, Yasuhide [1 ,2 ]
机构
[1] Natl Cardiovasc Ctr, Res Inst, Adv Med Engn Ctr, Dept Bioengn, Osaka 5658565, Japan
[2] Hokkaido Univ, Grad Sch Engn, Div Biotechnol & Macromol Chem, Sapporo, Hokkaido, Japan
[3] Kyoto Prefectural Univ Med, Dept Cardiovasc Surg, Kamikyo Ku, Kyoto 6028655, Japan
[4] Bridgestone Co, Chem Prod Dev Dept, Kanagawa, Japan
[5] Natl Cardiovasc Ctr Hosp & Res Inst, Dept Pathol, Osaka, Japan
[6] Kansai Univ, Dept Mech & Syst Engn, Osaka, Japan
关键词
autologous tissue valve; heart valve; tissue engineering;
D O I
10.1097/01.JCN.0000305053.50506.97
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
In body tissue architecture technology is a practical concept of regenerative medicine that uses the living recipient body's reaction to a foreign object as a reactor for autologous tissue organization. A novel autologous valved conduit was produced by creating a specially designed conduit-mold composite and elastomeric scaffold for this unique in vivo tissue engineering. Methods: Convex and concave plastic molds assembled with a small aperture of 500-800 pm were inserted into a microporous elastomeric conduit scaffold. The assembly was placed in a subcutaneous pocket of Japanese white rabbits for 1 month. The molds were pulled out from the edge of the harvested implant to obtain the valved conduit. Results: Homogenous and well-balanced trileaflet of membranous tissue was developed in the optimized aperture of molds. The valve leaflet closed and opened rapidly in synchronization with the backward and forward flow of the pulsatile flow circuit in vitro. Conclusions: A tissue-engineered conduit incorporated with a functional autologous trileaflet valve was developed in an in vivo reactor by optimizing the microstructures of conduit scaffolds and newly designing the composite molds. The method holds promise for a safe, biocompatible, and economical heart valve prosthesis.
引用
收藏
页码:61 / 64
页数:4
相关论文
共 50 条
  • [1] In vivo tissue-engineered, autologous, valved conduit "Biovalve" with robust wall tissues
    Funayama, M.
    Furukoshi, M.
    Moriwaki, T.
    Nakayama, Y.
    [J]. EUROPEAN HEART JOURNAL, 2015, 36 : 957 - 957
  • [2] Development of an in vivo tissue-engineered valved conduit (type S biovalve) using a slitted mold
    Funayama, Marina
    Furukoshi, Maya
    Moriwaki, Takeshi
    Nakayama, Yasuhide
    [J]. JOURNAL OF ARTIFICIAL ORGANS, 2015, 18 (04) : 382 - 386
  • [3] Development of an in vivo tissue-engineered valved conduit (type S biovalve) using a slitted mold
    Marina Funayama
    Maya Furukoshi
    Takeshi Moriwaki
    Yasuhide Nakayama
    [J]. Journal of Artificial Organs, 2015, 18 : 382 - 386
  • [4] Preparation of in-vivo tissue-engineered valved conduit with the sinus of Valsalva (type IV biovalve)
    Masashi Yamanami
    Yuki Yahata
    Tsutomu Tajikawa
    Kenkichi Ohba
    Taiji Watanabe
    Keiichi Kanda
    Hitoshi Yaku
    Yasuhide Nakayama
    [J]. Journal of Artificial Organs, 2010, 13 : 106 - 112
  • [5] Preparation of in-vivo tissue-engineered valved conduit with the sinus of Valsalva (type IV biovalve)
    Yamanami, Masashi
    Yahata, Yuki
    Tajikawa, Tsutomu
    Ohba, Kenkichi
    Watanabe, Taiji
    Kanda, Keiichi
    Yaku, Hitoshi
    Nakayama, Yasuhide
    [J]. JOURNAL OF ARTIFICIAL ORGANS, 2010, 13 (02) : 106 - 112
  • [6] IN-BODY TISSUE-ENGINEERED AND COMPLETELY AUTOLOGOUS AORTIC VALVED CONDUIT (BIOVALVE) IN A GOAT MODEL
    Takewa, Y.
    Nakayama, Y.
    Yamanami, M.
    Hanada, S.
    Umeki, A.
    Matsui, Y.
    Kanda, K.
    Yaku, H.
    Tajikawa, T.
    Ohba, K.
    Taenaka, Y.
    Tatsumi, E.
    [J]. INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2011, 34 (08): : 642 - 642
  • [7] Tissue-engineered valved conduits in the pulmonary circulation
    Stock, UA
    Nagashima, M
    Khalil, PN
    Nollert, GD
    Herden, T
    Sperling, JS
    Moran, A
    Lien, J
    Martin, DP
    Schoen, FJ
    Vacanti, JP
    Mayer, JE
    [J]. JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2000, 119 (04): : 732 - 740
  • [8] A tissue-engineered tendon scaffold
    Whitlock, P. W.
    Smith, T. L.
    Shilt, J. S.
    Poehling, G. G.
    Van Dyke, M. E.
    [J]. TISSUE ENGINEERING PART A, 2008, 14 (05) : 698 - 698
  • [9] Development of in vivo tissue-engineered conduit valve as the next generation of "biovalve"
    Hayashida, K
    Kanda, K
    Yaku, H
    Nakayama, Y
    [J]. INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2006, 29 (05): : 509 - 509
  • [10] In vivo evaluation of an in-body, tissue-engineered, completely autologous valved conduit (biovalve type VI) as an aortic valve in a goat model
    Takewa, Yoshiaki
    Yamanami, Masashi
    Kishimoto, Yuichiro
    Arakawa, Mamoru
    Kanda, Keiichi
    Matsui, Yuichi
    Oie, Tomonori
    Ishibashi-Ueda, Hatsue
    Tajikawa, Tsutomu
    Ohba, Kenkichi
    Yaku, Hitoshi
    Taenaka, Yoshiyuki
    Tatsumi, Eisuke
    Nakayama, Yasuhide
    [J]. JOURNAL OF ARTIFICIAL ORGANS, 2013, 16 (02) : 176 - 184