Nitrogen grafting onto polycarprolactone by a simple surface modification with atmospheric pressure glow discharge (Ar-APGD) and promoted neonatal human fibroblast growth

被引:0
作者
Inho Han
Byeong-Ju Kwon
Barbora Vagaska
Bong-Jin Kim
Jae Kyeong Kang
Mi Hee Lee
Hak Hee Kim
Jong-Chul Park
Kang-Kyun Wang
Yong-Rok Kim
Jun-Sung An
Ji-Min Lee
Chae-Young Hyun
Jae-Hwan Jeong
Soo-Jin Lim
机构
[1] Yonsei University College of Medicine,Cellbiocontrol Laboratory, Department of Medical Engineering
[2] Yonsei University College of Medicine,Brain Korea 21 Project for Medical Science
[3] Yonsei University,Department of Chemistry
[4] Hansung Science High School,undefined
来源
Macromolecular Research | 2011年 / 19卷
关键词
biodegradable polymer; plasma; atmospheric pressure; surface modification; neonatal human dermal fibroblast;
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摘要
Plasma surface modifications of polymer scaffolds using biomolecules such as oxygen, nitrogen, and other active grafting molecules have been studied to enhance biological responses such as cell attachment, spreading, and proliferation. According to the reports, nitrogen grafting requires corrosive or mixture gas environment, or post treatment. This study aimed to evaluate a simple atmospheric pressure plasma surface modification in order to graft nitrogen derivatives and to promote biological responses. In this study, a polycarprolactone (PCL) film was modified within 10 min by argon atmospheric pressure discharge (Ar-APGD). Excited argon atoms, nitrogen atoms, oxygen atoms, and hydroxyl functional groups were observed from the optical emission spectra of the discharge. Decreased carbonyl functional groups and ether functional groups were observed; notably, immobilized nitrogen was observed on the PCL surface after the Ar-APGD treatment. Promoted neonatal Human Dermal Fibroblast (nHDF) growth patterns were observed on the Ar-APGD-treated surface. [graphic not available: see fulltext]
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页码:1134 / 1141
页数:7
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