DocumentCode :
389375
Title :
Controlled outgrowth and synapse formation of rat brain neurons by microcontact printing
Author :
Vogt, A. ; Lauer, L. ; Offenhausser, A.
Author_Institution :
Max-Planck-Inst. for Polymer Res., Mainz, Germany
fYear :
2002
fDate :
2002
Firstpage :
106
Lastpage :
107
Abstract :
Micro contact printing of biomolecules is known as an efficient approach for guiding neuronal cell migration and outgrowth on artificial substrate surfaces. When appropriate surface chemistry and microstructures are chosen, neurons are growing according to the defined geometry of the pattern. In the present study, cortical and hippocampal neurons of rats (E15-E18) were cultured on laminin, laminin/polylysine, and polylysine patterned substrates, such that small neuronal networks with a defined geometry were obtained. The interconnections between neighbouring pairs of neurons within these artificial networks were assessed electrically by double and triple patch-clamp recordings and optically by phase contrast and fluorescence microscopy. Both functional and ohmic synapses were detected. Based on the recorded data and simulations in PSpice, an electrical model for ohmically coupled cells was derived. The functional synapses were evaluated in regard of the average synaptic transmission, the average excitatory post synaptic potential (EPSP), and the average signal transmission delays of synapses. It could be shown that functional synapses on patterned substrates behave very similar to those on unpatterned, homogeneous cultures.
Keywords :
bioelectric phenomena; biological techniques; brain; cellular biophysics; neurophysiology; printing; PSpice; appropriate surface chemistry; artificial substrate surfaces; biomolecules; biophysical research technique; controlled outgrowth; cortical neurons; defined geometry; double patch-clamp recordings; functional synapses; hippocampal neurons; microcontact printing; neuronal cell migration guidance; ohmic synapses; rat brain neurons; synapse formation; triple patch-clamp recordings; unpatterned homogeneous cultures; Biological neural networks; Chemistry; Geometry; Microstructure; Molecular biophysics; Neurons; Optical recording; Printing; Rats; Soft lithography;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Molecular, Cellular and Tissue Engineering, 2002. Proceedings of the IEEE-EMBS Special Topic Conference on
Print_ISBN :
0-7803-7557-2
Type :
conf
DOI :
10.1109/MCTE.2002.1175027
Filename :
1175027
Link To Document :
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