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Rose Bengal Crosslinking to Stabilize Collagen Sheets and Generate Modulated Collagen Laminates

机译:玫瑰孟加拉交联以稳定胶原蛋白片并产生调制胶原层压材料

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摘要

For medical application, easily accessible biomaterials with tailored properties are desirable. Collagen type I represents a biomaterial of choice for regenerative medicine and tissue engineering. Here, we present a simple method to modify the properties of collagen and to generate collagen laminates. We selected three commercially available collagen sheets with different thicknesses and densities and examined the effect of rose bengal and green light collagen crosslinking (RGX) on properties such as microstructure, swelling degree, mechanical stability, cell compatibility and drug release. The highest impact of RGX was measured for Atelocollagen, for which the swelling degree was reduced from 630% (w/w) to 520% (w/w) and thickness measured under force application increased from 0.014 mm to 0.455 mm, indicating a significant increase in mechanical stability. Microstructural analysis revealed that the sponge-like structure was replaced by a fibrous structure. While the initial burst effect during vancomycin release was not influenced by crosslinking, RGX increased cell proliferation on sheets of Atelocollagen and on Collagen Solutions. We furthermore demonstrate that RGX can be used to covalently attach different sheets to create materials with combined properties, making the modification and combination of readily available sheets with RGX an attractive approach for clinical application.
机译:对于医疗应用,可易于使用具有量身定制的物质的生物材料。胶原蛋白类型I代表了再生医学和组织工程的选择性的生物材料。在这里,我们提出了一种改变胶原蛋白的性质并产生胶原层压材料的简单方法。我们选择了三种具有不同厚度和密度的市售胶原块,并检测了玫瑰孟加拉和绿灯胶原交联(RGX)对微观结构,溶胀度,机械稳定性,细胞相容性和药物释放等性质的影响。针对Etelocollagen测量RGX的最高影响,其中溶胀度从630%(w / w)降低至520%(w / w),并且在力施加下测量的厚度从0.014 mm增加到0.455 mm,表明显着增加机械稳定性。微观结构分析显示,用纤维结构取代海绵状结构。虽然万古霉素释放期间的初始突发效应不受交联的影响,但RGX在Atelocollagen和胶原溶液上增加了细胞增殖。我们还证明RGX可用于共价连接不同的纸张以产生具有组合性质的材料,使得具有RGX的易用纸张的改性和组合具有吸引力的临床应用方法。

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