• DocumentCode
    2203664
  • Title

    High magnification imaging of neuronal somata undergoing Axon Stretch Growth in vitro

  • Author

    Loverde, J.R. ; Pfister, B.J.

  • Author_Institution
    Dept. of Biomed. Eng., New Jersey Inst. of Technol., Newark, NJ, USA
  • fYear
    2012
  • fDate
    16-18 March 2012
  • Firstpage
    45
  • Lastpage
    46
  • Abstract
    Axon Stretch Growth (ASG) is the process by which nerve fibers elongate in conjunction with growth of the enlarging body. During early embryonic development, neuronal growth cones traverse short distances to reach local synaptic targets. Subsequently, neuronal somata are separated from their targets by developmental growth of the enlarging organism. It is believed that mechanical forces, such as those due to skeletal growth, transduce a second mode of neuronal growth unique from growth cone extension. Such mechanotransduction results in the elongation of short processes into the long nerves characteristic of the adult nervous system. The majority of nerve regeneration studies focus heavily on the extension of growth cones, while neglecting affiliated body growth. Currently, regeneration of adult nerves by growth cone extension is limited to 3 cm in total overall length [1, 2], despite the initial capacity for 30 Fold this limitation. As biomedical engineers, our objective is to define and characterize the role biomechanical forces play in promoting growth of the nervous system. Here, utilizing custom motion-controlled bioreactors, we developed a method to perform high magnification imaging of neuronal somata undergoing ASG. Embryonic rat cervical dorsal root ganglia neurons were dissociated and plated onto poly-d-lysine coated cover glass and stretch grown at 0.25 mm/day for 1 week.
  • Keywords
    biomechanics; biomedical imaging; neurophysiology; ASG; adult nerve regeneration; adult nervous system; affiliated body growth; biomechanical forces; biomedical engineers; custom motion-controlled bioreactors; early embryonic development; elongation; embryonic rat cervical dorsal root ganglia neurons; enlarging body; enlarging organism; growth cone extension; high magnification imaging; in-vitro neuronal somata undergoing axon stretch growth; local synaptic targets; mechanical forces; mechanotransduction; nerve fibers; neuronal growth cones; poly-d-lysine coated cover glass; Biomedical engineering; Bioreactors; Imaging; In vitro; Nerve fibers; Substrates;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Bioengineering Conference (NEBEC), 2012 38th Annual Northeast
  • Conference_Location
    Philadelphia, PA
  • ISSN
    2160-7001
  • Print_ISBN
    978-1-4673-1141-0
  • Type

    conf

  • DOI
    10.1109/NEBC.2012.6206954
  • Filename
    6206954