DocumentCode :
250414
Title :
Investigation of central nervous system neurons under mechanical strain: An in vitro traumatic brain injury model
Author :
Duman, Osman Mert ; Celik, Cenk ; Sarikanat, Mehmet ; Urkmez, Aylin Sendemir
Author_Institution :
Dept. of Neurosci., Univ. de Fribourg, Fribourg, Switzerland
fYear :
2014
fDate :
16-17 Oct. 2014
Firstpage :
1
Lastpage :
4
Abstract :
Effects of mechanical loading on development of central nervous system (CNS) cells and neurite extension have been recognized recently. Effects of loading are very complicated, since until a threshold, tension plays a positive role while after the threshold value, it is degenerative. The situation gets more complicated since CNS is made up of several different cell types that respond to various loads differently. There are some mechanical trauma models in the literature, but they usually employ hard and two dimensional culture substrates, which fail to mimic the natural niche of the cells. The aim of this work is to create an experimental model that can mimic the physiological habitat and normal loading conditions, and investigate the responses of CNS cells in response to different mechanical stimuli and strains, and therefore evaluate the effects of mechanical stress on cell development, neurite extension and degeneration, in order to be used in therapeutic investigations for neurodegenerative diseases. Electrospun poly-caprolactone (PCL) scaffolds were used as tissue engineering scaffolds, and B35 central nervous system neuron cell line was employed. Effects of mechanical strain on cell morphology, neurite extension and cytoskeleton, and after the threshold value, on apoptosis have been examined in morphological and molecular level.
Keywords :
biomechanics; biomedical materials; brain; cellular biophysics; diseases; electrospinning; injuries; internal stresses; neurophysiology; stress-strain relations; tissue engineering; B35 central nervous system neuron cell line; cell development; cell morphology; cell types; central nervous system cells; cytoskeleton; degenerative threshold value; electrospun polycaprolactone scaffolds; in vitro traumatic brain injury model; mechanical loading effects; mechanical stimuli; mechanical strain; mechanical stress effects; mechanical trauma models; molecular level; morphological level; natural niche; neurite degeneration; neurite extension; neurodegenerative diseases; physiological habitat; tension; tissue engineering scaffolds; two-dimensional culture substrates; Brain modeling; Central nervous system; In vitro; Load modeling; Loading; Strain; Tissue engineering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Biomedical Engineering Meeting (BIYOMUT), 2014 18th National
Conference_Location :
Istanbul
Type :
conf
DOI :
10.1109/BIYOMUT.2014.7026384
Filename :
7026384
Link To Document :
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