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Excimer laser forward transfer of mammalian cells using a novel triazene absorbing layer
Authors:A. Doraiswamy  T. Lippert  A. Wokaun  B. Hopp  R. Modi  D.B. Chrisey
Affiliation:a Georgia Institute of Technology, School of Material Science and Engineering, Atlanta, GA 30332, USA
b Paul Scherrer Institut, CH-5232 Villigen PSI, Switzerland
c Laboratory for Functional Polymers EMPA Swiss Federal Laboratories for Materials Testing and Research Überlandstrasse, 129 CH-8600 Dübendorf, Switzerland
d Hungarian Academy of Sciences and University of Szeged, H-6720 Szeged, Dom ter 9, Hungary
e National Institute for Laser, Plasma and Radiation Physics, P.O. Box MG-16 Magurele, 077125 Bucharest, Romania
f US Naval Research Laboratory, Washington, DC 20375-5345, USA
Abstract:We present a novel laser-based approach for developing tissue engineered constructs and other cell-based assembly's. We have deposited mesoscopic patterns of viable B35 neuroblasts using a soft direct approach of the matrix assisted pulsed laser evaporation direct write (MAPLE DW) process. As a development of the conventional direct write process, an intermediate layer of absorbing triazene polymer is used to provide gentler and efficient transfers. Transferred cells were examined for viability and proliferation and compared with that of as-seeded cells to determine the efficacy of the process. Results suggest that successful transfers can be achieved at lower fluences than usual by the incorporation of the intermediate absorbing layer thus avoiding any damage to cells and other delicate materials. MAPLE DW offers rapid computer-controlled deposition of mesoscopic voxels at high spatial resolutions, with extreme versatility in depositing combinations of natural/synthetic, living/non-living, organic/inorganic and hard/soft materials. Our approach offers a gentle and efficient transfer of viable cells which when combined with a variety of matrix materials allows development of constructs and bioactive systems in bioengineering.
Keywords:Laser forward transfer   MAPLE DW   Triazene polymer
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