Collagen-Chitosan Scaffold - Lauric Acid Plasticizer for Skin Tissue Engineering on Burn Cases

被引:2
作者
Widiyanti, Prihartini [1 ,2 ]
Setyadi, Ewing Dian [1 ]
Rudyardjo, Djony Izak [2 ]
机构
[1] Univ Airlangga, Fac Sci & Technol, Biomed Engn, Mulyorejo 60115, Surabaya, Indonesia
[2] Univ Airlangga, Inst Trop Dis, Mulyorejo 60115, Surabaya, Indonesia
来源
BIOMEDICAL ENGINEERING'S RECENT PROGRESS IN BIOMATERIALS, DRUGS DEVELOPMENT, AND MEDICAL DEVICES | 2017年 / 1817卷
关键词
scaffold; collagen; chitosan; lauric acid; skin tissue engineering;
D O I
10.1063/1.4976765
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The prevalence of burns in the world is more than 800 cases per one million people each year and this is the second highest cause of death due to trauma after traffic accident. Many studies are turning to skin substitute methods of tissue engineering. The purpose of this study is to determine the composition of the collagen, chitosan, and lauric acid scaffold, as well as knowing the results of the characterization of the scaffold. The synthesis of chitosan collagen lauric acid scaffold as a skin tissue was engineered using freeze dried method. Results from making of collagen chitosan lauric acid scaffold was characterized physically, biologically and mechanically by SEM, cytotoxicity, biodegradation, and tensile strength. From the morphology test, the result obtained is that pore diameter size ranges from 94.11 to 140.1 mu m for samples A, B, C, D, which are in the range of normal pore size 63-150 mu m, while sample E has value below the standard which is about 37.87 to 47.36 mu m. From cytotoxicity assay, the result obtained is the percentage value of living cells between 20.11 to 21.51%. This value is below 50% the standard value of living cells. Incompatibility is made possible because of human error mainly the replication of washing process over the standard. Degradation testing obtained values of 19.44% - 40% by weight which are degraded during the 7 days of observation. Tensile test results obtained a range of values of 0.192 - 3.53 MPa. Only sample A (3.53 MPa) and B (1.935 MPa) meet the standard values of skin tissue scaffold that is 1-24 MPa. Based on the results of the characteristics of this study, composite chitosan collagen scaffold with lauric acid plasticizer has a potential candidate for skin tissue engineering for skin burns cases.
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页数:8
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