Title :
Laser microstructured 3D polymeric biocompatible implants
Author :
Malinauskas, Mangirdas ; Baltriukiene, Dalva ; Kraniauskas, A. ; Danilevicius, Paulius ; Balciunas, Evaldas ; Zukauskas, Albertas ; Purlys, Vytautas ; Sirmenis, Raimondas ; Bukelskiene, Virginija ; Gadonas, Roaldas ; Sirvydis, Vytautas ; Piskarskas, Algis
Author_Institution :
Dept. of Quantum Electron., Vilnius Univ., Vilnius, Lithuania
Abstract :
In this report we present experimental results on biocompatibility based on stem cell growth experiments in vitro as well as reaction of living organism to polymer implants in vivo of femtosecond laser 3D micro/nanostructurable photopolymers. A synergetic study on materials for rapid 3D scaffold fabrication having micrometer features and being centimeter in size, their biocompatibility in vitro and in vivo was done. The systematic study was performed providing consistent information which is important for further progress in cell growth and tissue engineering experiments. The chosen materials where of four different classes: well known biocompatible hybrid ORMOCER (Ormocore b59, Micro Resist) [1], widely used biodegradable di-acrylated poly(ethylene)glycol (PEG-DA-258, Sigma-Aldrich) [2], pure acrylate AKRE (SR368, Sartomer) [3] and novel high quality laser structurable material ORMOSIL (SZ2080, FORTH) [4]. All of the materials were evaluated by their suitability for femtosecond laser structuring, which is well established as a technique enabling rapid and flexible production of 3D micro/nanostructures. All photopolymers could be 3D structured with <; 1 μm resolution and up to cm in overall sizes, thus materializing the computer models of the scaffolds with required pore sizes and porosities. The typical dimensions of scaffolds were 5 × 5 × 0.5 mm3 discs with 25 μm pore sizes and 40-60% porosity.
Keywords :
biochemistry; biodegradable materials; biomedical materials; cellular biophysics; laser applications in medicine; optical polymers; prosthetics; tissue engineering; ORMOCER; ORMOSIL; biocompatibility; biodegradable di-acrylated poly(ethylene)glycol; computer models; femtosecond laser 3D micro/nanostructurable photopolymers; femtosecond laser structuring; laser microstructured 3D polymeric biocompatible implants; laser structurable material; living organism reaction; micrometer features; polymer implants; pore sizes; porosities; pure acrylate AKRE; rapid 3D scaffold fabrication; stem cell growth experiments; synergetic study; tissue engineering experiments; Fabrication; Heart; Implants; Lasers; Polymers; Three dimensional displays;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/EQEC), 2011 Conference on and 12th European Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4577-0533-5
Electronic_ISBN :
Pending
DOI :
10.1109/CLEOE.2011.5943232