Tissue-engineered grafts matured in the right ventricular outflow tract

被引:15
|
作者
Ozawa, T
Mickle, DAG
Weisel, RD
Matsubayashi, K
Fujii, T
Fedak, PWM
Koyama, N
Ikada, Y
Li, RK
机构
[1] Univ Toronto, Toranomon Gen Hosp, Toronto Gen Res Inst, Dept Surg,Div Cardiovasc Surg, Toronto, ON M5G 2C4, Canada
[2] Toho Univ, Sch Med, Tokyo, Japan
[3] Suzuka Univ Med Sci, Suzuka, Japan
关键词
congenital heart defects; pediatric cardiac surgery; myocardium; tissue engineering; smooth muscle cells; phenotype; biodegradable scaffold; biomaterial;
D O I
10.3727/000000004773301852
中图分类号
Q813 [细胞工程];
学科分类号
摘要
Autologous smooth muscle cell (SMC)-seeded biodegradable scaffolds could be a suitable material to repair some pediatric right ventricular outflow tract (RVOT) cardiac anomalies. Adult syngenic Lewis rat SMCs (2 x 10(6)) were seeded onto a new biodegradable copolymer sponge made of F-caprolactone-CO-L-lactide reinforced with poly-L-lactide fabric (PCLA). Two weeks after seeding, the patch was used to repair a surgically created RVOT defect in an adult rat. At 8 weeks after implantation the spongy copolymer component was biodegraded, and SM tissue and extracellular matrices containing elastin fibers were present in the scaffolds. By 22 weeks more fibroblasts and collagen were present (p < 0.05). The number of capillaries in the grafts also increased (p < 0.001) between 8 and 22 weeks. The fibrous poly-L-lactide component of the PCLA scaffold remained. The 22-week grafts maintained their thickness and surface area in the RVOT. The SMCs prior to implantation were in a synthetic phenotype and developed in vivo into a more contractile phenotype. By 8 weeks the patches were endothelialized on their endocardial surfaces. Future work to increase the SM tissue and elastin content in the patch will be necessary before implantation into a pediatric large-animal model is tested.
引用
收藏
页码:169 / 177
页数:9
相关论文
共 50 条
  • [41] Individualized tissue-engineered veins as vascular grafts: A proof of concept study in pig
    Hakansson, Joakim
    Simsa, Robin
    Bogestal, Yalda
    Jenndahl, Lachmi
    Gustafsson-Hedberg, Tobias
    Petronis, Sarunas
    Strehl, Raimund
    Osterberg, Klas
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2021, 15 (10) : 818 - 830
  • [42] Insight on the endothelialization of small silk-based tissue-engineered vascular grafts
    Cordelle, Justine
    Mantero, Sara
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2020, 43 (10) : 631 - 644
  • [43] Tissue-engineered Vascular Grafts in Children With Congenital Heart Disease: Intermediate Term Follow-up
    Sugiura, Tadahisa
    Matsumura, Goki
    Miyamoto, Shinka
    Miyachi, Hideki
    Breuer, Christopher K.
    Shinoka, Toshiharu
    SEMINARS IN THORACIC AND CARDIOVASCULAR SURGERY, 2018, 30 (02) : 175 - 179
  • [44] Conduits for Right Ventricular Outflow Tract Reconstruction in Infants and Young Children
    Qian, Tao
    Yuan, Haoyong
    Chen, Chunyang
    Liu, Yuhong
    Lu, Ting
    Huang, Can
    Wu, Zhongshi
    FRONTIERS IN SURGERY, 2021, 8
  • [45] Dynamic culture conditions to generate silk-based tissue-engineered vascular grafts
    Zhang, Xiaohui
    Wang, Xiuli
    Keshav, Vinny
    Wang, Xiaoqin
    Johanas, Jacqueline T.
    Leisk, Gary G.
    Kaplan, David L.
    BIOMATERIALS, 2009, 30 (19) : 3213 - 3223
  • [46] Decellularized bovine reinforced vessels for small-diameter tissue-engineered vascular grafts
    Grandi, Claudio
    Baiguera, Silvia
    Martorina, Francesca
    Lora, Silvano
    Amista, Pietro
    Dalzoppo, Daniele
    Del Gaudio, Costantino
    Bianco, Alessandra
    Di Liddo, Rosa
    Conconi, Maria Teresa
    Parnigotto, Pier Paolo
    INTERNATIONAL JOURNAL OF MOLECULAR MEDICINE, 2011, 28 (03) : 315 - 325
  • [47] Novel application and serial evaluation of tissue-engineered portal vein grafts in a murine model
    Maxfield, Mark W.
    Stacy, Mitchel R.
    Kurobe, Hirotsugu
    Tara, Shuhei
    Yi, Tai
    Cleary, Muriel A.
    Zhuang, Zhen W.
    Rodriguez-Davalos, Manuel I.
    Emre, Sukru H.
    Iwakiri, Yasuko
    Shinoka, Toshiharu
    Breuer, Christopher K.
    REGENERATIVE MEDICINE, 2017, 12 (08) : 929 - 938
  • [48] Developing a tissue-engineered model of the human bronchiole
    Miller, Cheryl
    George, Steven
    Niklason, Laura
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2010, 4 (08) : 619 - 627
  • [49] Tissue-engineered bone regeneration
    Petite, H
    Viateau, V
    Bensaïd, W
    Meunier, A
    de Pollak, C
    Bourguignon, M
    Oudina, K
    Sedel, L
    Guillemin, G
    NATURE BIOTECHNOLOGY, 2000, 18 (09) : 959 - 963
  • [50] Composite tissue-engineered materials
    Vesely, I
    Ramamurthi, A
    Shi, Y
    SECOND JOINT EMBS-BMES CONFERENCE 2002, VOLS 1-3, CONFERENCE PROCEEDINGS: BIOENGINEERING - INTEGRATIVE METHODOLOGIES, NEW TECHNOLOGIES, 2002, : 811 - 812