Tissue engineering of cardiac valves on the basis of PGA/PLA co-polymers

被引:0
|
作者
Stock, Ulrich A. [1 ]
Mayer Jr., John E. [1 ]
机构
[1] Department of Cardiovascular Surgery, Children's Hospital, 300 Longwood Avenue, Boston MA, 02115, United States
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Heart valve prostheses
引用
收藏
页码:249 / 260
相关论文
共 50 条
  • [41] Bandgap engineering of novel peryleno[1,12-bcd]thiophene sulfone-based conjugated co-polymers for significantly enhanced hydrogen evolution without co-catalyst
    Ye, Haonan
    Wang, Zhiqiang
    Yang, Zhicheng
    Zhang, Shicong
    Gong, Xueqing
    Hua, Jianli
    JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (38) : 20062 - 20071
  • [42] Tissue engineering needs new biomaterials: Poly(xylitol-dodecanedioic acid)-co-polylactic acid (PXDDA-co-PLA) and its nanocomposites
    Sotoudeh, Amir
    Darbemamieh, Goldis
    Goodarzi, Vahabodin
    Shojaei, Shahrokh
    Asefnejad, Azadeh
    EUROPEAN POLYMER JOURNAL, 2021, 152
  • [43] Side-Chain Engineering of Benzodithiophene-Fluorinated Quinoxaline Low-Band-Gap Co-polymers for High-Performance Polymer Solar Cells
    Xu, Xiaopeng
    Wu, Yulei
    Fang, Junfeng
    Li, Zuojia
    Wang, Zhenguo
    Li, Ying
    Peng, Qiang
    CHEMISTRY-A EUROPEAN JOURNAL, 2014, 20 (41) : 13259 - 13271
  • [44] Electrospun Poly(lactic-co-glycolic acid)/Multiwalled Carbon Nanotube Nanofibers for Cardiac Tissue Engineering
    Liu, Yaowen
    Liang, Xue
    Wang, Shuyao
    Hu, Ke
    JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2016, 6 (09) : 719 - 728
  • [45] Melt Electrospinning Writing of Poly-Hydroxymethylglycolide-co-ε-Caprolactone-Based Scaffolds for Cardiac Tissue Engineering
    Castilho, Miguel
    Feyen, Dries
    Flandes-Iparraguirre, Maria
    Hochleitner, Gernot
    Groll, Juergen
    Doevendans, Pieter A. F.
    Vermonden, Tina
    Ito, Keita
    Sluijter, Joost P. G.
    Malda, Jos
    ADVANCED HEALTHCARE MATERIALS, 2017, 6 (18)
  • [46] Multidimensional nanofibrous scaffolds of poly(lactide-co-caprolactone) and poly(ethyl oxazoline) with improved features for cardiac tissue engineering
    Lakshmanan, Rajesh
    Krishnan, Uma Maheswari
    Sethuraman, Swaminathan
    NANOMEDICINE, 2015, 10 (23) : 3451 - 3467
  • [47] Cardiac tissue engineering: characteristics of in unison contracting two- and three-dimensional neonatal rat ventricle cell (co)-cultures
    van Luyn, MJA
    Tio, RA
    van Seijen, XJGY
    Plantinga, JA
    de Leij, LFMH
    DeJongste, MJL
    van Wachem, PB
    BIOMATERIALS, 2002, 23 (24) : 4793 - 4801
  • [48] A study of a three-dimensional PLGA sponge containing natural polymers co-cultured with endothelial and mesenchymal stem cells as a tissue engineering scaffold
    Shim, Jung Bo
    Ankeny, Randall F.
    Kim, Hyeongseok
    Nerem, Robert M.
    Khang, Gilson
    BIOMEDICAL MATERIALS, 2014, 9 (04)
  • [49] Preparation of degradable porous structures based on 1,3-trimethylene carbonate and D,L-lactide (co)polymers for heart tissue engineering
    Pêgo, AP
    Siebum, B
    Van Luyn, MJA
    Van Seijen, XJGY
    Poot, AA
    Grijpma, DW
    Feijen, J
    TISSUE ENGINEERING, 2003, 9 (05): : 981 - 994
  • [50] New Three-Dimensional Poly(decanediol-co-tricarballylate) Elastomeric Fibrous Mesh Fabricated by Photoreactive Electrospinning for Cardiac Tissue Engineering Applications
    Ismail, Hesham M.
    Zamani, Somayeh
    Elrayess, Mohamed A.
    Kafienah, Wael
    Younes, Husam M.
    POLYMERS, 2018, 10 (04)