• Title/Summary/Keyword: chloric acid mixture solution

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Interaction of Fibroblast Cells onto Chloric Acid-treated Poly($\alpha$-hydroxy acid) Polymer Surfaces (염소산 처리된 Poly($\alpha$-hydroxy acid)계 고분자 표면과 섬유아세포의 상호작용)

  • 이상진;강길선;이진호;이영무;이해방
    • Polymer(Korea)
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    • v.24 no.6
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    • pp.877-885
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    • 2000
  • PLA, PGA and PLGA films were treated with chloric acid mixture solution [70% perchloric acid (HClO$_4$)/potassium chlorate (KClO$_3$) aq. saturated solution, 3 : 2] to increase surface wettability and thus cell compatibility. The surface-treated PLA, PGA, and PLGA films were characterized by the measurement of water contact angle, electron spectroscopy for chemical analysis, and scanning electron microscopy. Surface wettability of chloric acid-treated PLA, PGA, and PLGA film surfaces was gradually increased with increase of treatment time. Unlike EtOH pre-treatment, chloric acid-treated polymer films maintain hydrophilic surface after drying. In cell adhesion test, fibroblasts were cultured on the chloric acid-treated film surfaces for 1 and 2 days. As the surface wettability increased, the cell adhesion on the surface were increased. In conclusion, this study demonstrated that the surface wettability of polymer plays an important role for cell adhesion and proliferation behavior.

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Effect of Poly(3-hydroxibutyrate-co-3-hydroxivalerate) Surface with Different Wettability on Fibroblast Behavior

  • Lee, Sang-Jin;Lee, Young-Moo;Khang, Gilson;Kim, Un-Young;Lee, Bong;Lee, Hai-Bang
    • Macromolecular Research
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    • v.10 no.3
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    • pp.150-157
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    • 2002
  • Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) is a microbial storage polymer with biodegradable properties. In order to improve the cell compatibility of PHBV surfaces, the physicochemical treatments have been demonstrated. In this study, physical method was corona discharge treatment and chemical method was chloric acid mixture solution treatment. The physicochemically treated PHBV film surfaces were characterized by the measurement of water contact angle, electron spectroscopy for chemical analysis, and scanning electron microscopy (SEM). The water contact angle of the physicochemically treated PHBV surfaces decreased from 75 to 30~40 degree, increased hydrophilicity. due to the introduction of oxygen-based functional group onto the PHBV backbone chain. The mouse NIH/3T3 fibroblasts cultured onto the physicochemically treated PHBV film surfaces with different wettability. The effect of the PHBV surface with different wettability was determined by SEM as counts of cell number and [$^3$H]thymidine incorporation as measures of cell proliferation. As the surface wettability increased, the number of the cell adhered and proliferated on the surface was increased. The result seems closely related with the serum protein adsorption on the physicochemically treated PHBV surface. In conclusion, this study demonstrated that the surface wettabilily of biodegradable polymer as the PHBV plays an important role for cell adhesion and proliferation behavior for biomedical application.