• DocumentCode
    105455
  • Title

    Submicron-grooved culture surface extends myotube length by forming parallel and elongated motif

  • Author

    Yuan, Chen-ching ; Ma, Kuang-jen ; Li, Kuei-chi ; Chien, Hsi-hsin ; Lu, Huai-en ; Tseng, Ching-ping ; Hwang, Shiaw-min

  • Author_Institution
    Bioresource Collection & Res. Center, Food Ind. R&D Inst., Hsinchu, Taiwan
  • Volume
    8
  • Issue
    8
  • fYear
    2013
  • fDate
    Aug-13
  • Firstpage
    440
  • Lastpage
    444
  • Abstract
    During skeletal muscle development, correct cellular orientation is vital to generate desired longitudinal contraction for functional muscle fibres. In this reported study, submicron-imprint lithography was used to generate submicron-grooved surfaces on polystyrene plates to induce striated myotubes in vitro. Mouse muscle myoblast cells cultured on a submicron-grooved surface migrated faster in a directionally uniform fashion; in comparison, cells cultured on a flat surface grew and migrated slower in indiscriminate directions. Subsequent maturation of the myoblast cells formed along the submicron-groove surface resulted in a tandem of parallel myotubes that were both longer and greater in circumference than in the case of the flat surface. In a functional test, the co-culture submicron-groove-grown myotubes with neurotransmitter secreting cells further demonstrated contraction abilities, suggesting submicron-groove-guided growth served to enhance myotube formation while retaining striated motifs and physiological functionality for muscle tissue engineering.
  • Keywords
    biomechanics; biomedical materials; cellular transport; elongation; lithography; muscle; neurophysiology; polymers; tissue engineering; cell growth; cell maturation; cell migration; cellular orientation; co-culture submicron-groove-grown myotubes; elongated motif; functional muscle fibres; in-vitro striated myotubes; mouse muscle myoblast cells; muscle tissue engineering; myotube formation; myotube length; neurotransmitter secreting cells; parallel motif; parallel myotubes; physiological functionality; polystyrene plates; skeletal muscle development; striated motifs; submicron-grooved culture surface; submicron-imprint lithography;
  • fLanguage
    English
  • Journal_Title
    Micro & Nano Letters, IET
  • Publisher
    iet
  • ISSN
    1750-0443
  • Type

    jour

  • DOI
    10.1049/mnl.2013.0153
  • Filename
    6587984