Contractile skeletal muscle tissue-engineered on an acellular scaffold

被引:112
|
作者
Borschel, GH
Dennis, RG
Kuzon, WM
机构
[1] Univ Michigan, Taubman Ctr 2130, Sect Plast Surg, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Mech Engn, Ann Arbor, MI 48109 USA
关键词
D O I
10.1097/01.PRS.0000101064.62289.2F
中图分类号
R61 [外科手术学];
学科分类号
摘要
For the reconstructive surgeon, tissue-engineered skeletal muscle may offer reduced donor-site morbidity and an unlimited supply of tissue. Using an acellularized mouse extensor digitorum longus muscle as a scaffold, the authors produced engineered skeletal muscle capable of generating longitudinal force. Eight extensor digitorum Ion-us muscles from adult mice were made acellular using a protocol developed in the authors' laboratory. The acellular muscles were then placed in a bath of 20% fetal bovine serum in Dulbecco's modified Eagle's medium and 100 U/ml penicillin for 1 week at room temperature. C2C12 myoblasts were injected into the acellular muscle matrix using a 26-gauge needle and a 100-mul syringe. The resulting constructs were placed in growth medium for 1 week at 37degreesC under 5% carbon dioxide, with media changes every 48 hours. The constructs were then placed in differentiation medium for I week, with media changes every 48 hours. Isometric contractile force testing of the constructs demonstrated production of longitudinal contractile force on electrical stimulation. A length-tension, or Starling, relationship was observed. Light and electron microscopy studies demonstrated recapitulation of some of the normal histologic features of developing skeletal muscle.
引用
收藏
页码:595 / 602
页数:8
相关论文
共 50 条
  • [1] Contractile skeletal muscle tissue-engineered on an acellular scaffold - Discussion
    Shanahan, RK
    Hedrick, MH
    PLASTIC AND RECONSTRUCTIVE SURGERY, 2004, 113 (02) : 603 - 604
  • [2] Tissue-engineered axially vascularized contractile skeletal muscle
    Borschel, Gregory H.
    Dow, Douglas E.
    Dennis, Robert G.
    Brown, David L.
    PLASTIC AND RECONSTRUCTIVE SURGERY, 2006, 117 (07) : 2235 - 2242
  • [3] Neurotization improves contractile forces of tissue-engineered skeletal muscle
    Dhawan, Vikas
    Lytle, Ian F.
    Dow, Douglas E.
    Huang, Yen-Chih
    Brown, David L.
    TISSUE ENGINEERING, 2007, 13 (11): : 2813 - 2821
  • [4] Effect of electrical stimulation on contractile properties of tissue-engineered skeletal muscle
    Takagi, S.
    Kamon, T.
    Nakamura, T.
    Fujisato, T.
    JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2012, 6 : 118 - 119
  • [5] Reconstruction of a Tissue-Engineered Cornea with Porcine Corneal Acellular Matrix as the Scaffold
    Fu, Yao
    Fan, Xianqun
    Chen, Ping
    Shao, Chunyi
    Lu, Wenjuan
    CELLS TISSUES ORGANS, 2010, 191 (03) : 193 - 202
  • [6] Xenogeneic Acellular Conjunctiva Matrix as a Scaffold of Tissue-Engineered Corneal Epithelium
    Zhao, Haifeng
    Qu, Mingli
    Wang, Yao
    Wang, Zhenyu
    Shi, Weiyun
    PLOS ONE, 2014, 9 (11):
  • [7] Vascularization of tissue-engineered skeletal muscle constructs
    Gholobova, D.
    Terrie, L.
    Gerard, M.
    Declercq, H.
    Thorrez, L.
    BIOMATERIALS, 2020, 235
  • [8] Bioactuator Using Tissue-engineered Skeletal Muscle
    Fujisato, T.
    TISSUE ENGINEERING PART A, 2016, 22 : S95 - S95
  • [9] Physiology and metabolism of tissue-engineered skeletal muscle
    Cheng, Cindy S.
    Davis, Brittany N. J.
    Madden, Lauran
    Bursac, Nenad
    Truskey, George A.
    EXPERIMENTAL BIOLOGY AND MEDICINE, 2014, 239 (09) : 1203 - 1214
  • [10] Acellular ostrich corneal stroma used as scaffold for construction of tissue-engineered cornea
    Liu, Xian-Ning
    Zhu, Xiu-Ping
    Wu, Jie
    Wu, Zheng-Jie
    Yin, Yong
    Xiao, Xiang-Hua
    Su, Xin
    Kong, Bin
    Pan, Shi-Yin
    Yang, Hua
    Cheng, Yan
    An, Na
    Mi, Sheng-Li
    INTERNATIONAL JOURNAL OF OPHTHALMOLOGY, 2016, 9 (03) : 325 - 331