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Fabrication and characterization of 3-D porous scaffold by polycaprolactone
Author(s) -
JinTae Kim,
Jung Wan Bang,
Chang-Yong Hyun,
Hyo Jeong Choi,
Taehyung Kim
Publication year - 2016
Publication title -
journal of the korea academia-industrial cooperation society
Language(s) - English
Resource type - Journals
eISSN - 2288-4688
pISSN - 1975-4701
DOI - 10.5762/kais.2016.17.2.58
Subject(s) - distilled water , polycaprolactone , porosity , materials science , membrane , chemical engineering , scaffold , sodium alginate , fabrication , chemistry , nuclear chemistry , composite material , sodium , chromatography , biomedical engineering , polymer , biochemistry , medicine , alternative medicine , pathology , engineering , metallurgy
This study was a preparatory experiment aimed the development of membrane scaffolds for tissue engineering. A PCL composite solution contained sodium chloride(NaCl). PCL porous membrane scaffolds were formed on a glass casting plate using a film applicator and immersed in distilled water to remove the NaCl reaching after drying. NaCl was used as a pore former for a 3 dimensional pore net-work. The dry condition parameters were , room temperature (RT) and for each different temperatures in the drying experiment. SEM revealed the morphology of the pores in the membrane after drying and evaluated the in vitro cytotoxicity for basic bio-compatibility. The macro and micro pores existed together in the scaffold and showed a 3-dimensional pore net-working morphology at RT. The in vitro cytotoxicity test result was "grade 2" in accordance with the criterion for cytotoxicity by ISO 10993-5. The dry condition affected the formation of a 3 dimensional pore network and micro and macro pores. Therefore, these results are expected provide the basic process for the development of porous membrane scaffolds to control degradation and allow drug delivery.

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