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    Cellulose membrane as a biomaterial: from hydrolysis to depolymerization with electron beam

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    https://www.riss.kr/link?id=A103818300

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    The cellulose membrane (CM) is a major component of plant cell walls and is both a chemically and mechanically stable synthetic polymer with many applications for use in tissue engineering. However, due to its dissolution difficulty, there are no known physiologically relevant or pharmaceutically clinical applications for this polymer. Thus, research is underway on controlled and adjusted forms of cellulose depolymerization. To advance the study of applying CM for tissue engineering, we have suggested new possibilities for electron beam (E-beam) treatment of CM. Treatment of CM with an E-beam can modify physical, chemical, molecular and biological properties, so it can be studied continuously to improve its usefulness and to enhance value. We review clinical applications of CM, cellulose binding domains, cellulose crosslinking proteins, conventional hydrolysis of cellulose, and depolymerization with radiation and focus our experiences with depolymerization of E-beam irradiated CM in this article.
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    The cellulose membrane (CM) is a major component of plant cell walls and is both a chemically and mechanically stable synthetic polymer with many applications for use in tissue engineering. However, due to its dissolution difficulty, there are no know...

    The cellulose membrane (CM) is a major component of plant cell walls and is both a chemically and mechanically stable synthetic polymer with many applications for use in tissue engineering. However, due to its dissolution difficulty, there are no known physiologically relevant or pharmaceutically clinical applications for this polymer. Thus, research is underway on controlled and adjusted forms of cellulose depolymerization. To advance the study of applying CM for tissue engineering, we have suggested new possibilities for electron beam (E-beam) treatment of CM. Treatment of CM with an E-beam can modify physical, chemical, molecular and biological properties, so it can be studied continuously to improve its usefulness and to enhance value. We review clinical applications of CM, cellulose binding domains, cellulose crosslinking proteins, conventional hydrolysis of cellulose, and depolymerization with radiation and focus our experiences with depolymerization of E-beam irradiated CM in this article.

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    참고문헌 (Reference)

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    4 김성민, "미더덕 유래 셀룰로오스막의 기본 구조 및 성분 분석에 대한 연구" 한국조직공학과 재생의학회 7 (7): 191-201, 2010

    5 김성민, "멍게와 미더덕 피부의 천연 셀룰로오스 각질을 이용한 골재생 효능을 가진 생활성막의 개발 - 예비 연구" 대한구강악안면외과학회 31 (31): 440-453, 2005

    6 김성민, "골재생 유도막 연구의 임상응용과 개발" 한국조직공학과 재생의학회 5 (5): 959-973, 2008

    7 Bolam DN, "X4 modules represent a new family of carbohydrate-binding modules that display novel properties" 28 : 22953-22963, 2004

    8 Wang AA, "Whole-cell immonilization using cell surface-exposed cellulose-binding domain" 17 : 407-411, 2001

    9 Bouchard J, "The effects of ionizing radiation on the cellulose of wood free paper" 13 : 601-610, 2006

    10 Dahl TC, "The effect of pancreatin on the dissolution performance of gelatin-coated tablets exposed to high-humidity conditions" 8 : 412-414, 1991

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    13 Brun E, "Structure and binding specificity of the second N-terminal cellulose-binding domain from Cellulomonas fimi endoglucanase C" 39 : 2445-2458, 2000

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