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Physicochemical properties and enhanced cellullar responses of biocompatible polymeric scaffolds treated with atmospheric pressure plasma using O2 gas
Authors:Hyun-Uk LeeSo-Young Park  Yoon-Hee KangSe-Young Jeong  Sae-Hae ChoiYoon-Young Jahng  Gook-Hyun ChungMoon-Bum Kim  Chae-Ryong Cho
Affiliation:
  • a Department of Nano Fusion Technology, Pusan National University, Busan 609735, Republic of Korea
  • b Division of Cogni-mechatronics Engineering, Pusan National University, Miryang 627706, Republic of Korea
  • c Division of Biological Sciences, Chonbuk National University, Jeonju 561756, Republic of Korea
  • d Department of Dermatology, School of Medicine, Pusan National University, Busan, Republic of Korea
  • Abstract:Biocompatible polymeric scaffolds were fabricated by mixing 5 wt.% poly(ε-caprolactone) (P) with 4 wt.% gelatin (G) and 1.6 wt.% Dulbecco's modified Eagle's medium containing 10% fetal bovine serum (D). These PGD scaffolds were also treated with atmospheric pressure (AP) plasma using O2 reactive gas (to create O-PGD scaffolds). The physicochemical and mechanical properties of the PGD scaffolds were characterized by in vitro biodegradability tests, X-ray photoelectron spectroscopy, Fourier transform infrared spectroscopy, contact angle measurements, and tensile strength measurements. The wettability and hydrophilic properties of the scaffold surface were improved remarkably by adding G and D to P, and by subsequent oxygen-assisted AP plasma treatment. An MTT assay, a cell attachment efficiency assay, scanning electron microscopy, and confocal microscopy revealed that Chinese Hamster Ovary (CHO)-K1 cells exhibited higher cell attachment and viability on the PGD and O-PGD scaffolds than on the P and PG scaffolds. Furthermore, the long-term viability of the CHO cells on the PGD and O-PGD scaffolds without exchanging the cell culture media was significantly improved compared to their viability on the P and PG scaffolds. Overall, the PGD and O-PGD scaffolds are expected to be useful as cell growth supporting biomaterials in tissue engineering.
    Keywords:Atmospheric plasma   Surface modification   Polymeric scaffolds   Biodegradable polymer   Cell growth
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