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Macroporous Silk Fibroin Cryogeis

机译:大孔丝素冰蛋白

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Silk fibroin cryogeis with remarkable properties were obtained from frozen fibroin solutions (4.2—12.6%) at subzero temperatures between -S and -22 °C. This was achieved by the addition of ethylene glycol diglycidyl ether (EGDE) into the cryogelation system. EGDE triggers the conformational transition of fibroin from random coil to β-sheet structure and hence fibroin gelation. One of the unique features of fibroin cryogeis is their elasticity that allows them to resist complete compression without any crack development, during which water inside the cryogel is removed. The compressed cryogel immediately swells during unloading to recover its original shape. The scaffolds obtained by freeze-drying of the cryogeis consist of regular, interconnected pores of diameters ranging from 50 to 10 μm that could be regulated by the synthesis parameters. The mechanical compressive strength and the modulus of the scaffolds increase with decreasing pore diameter, that is, with decreasing gelation temperature or, with increasing fibroin or EGDE concentrations in the feed. The scaffolds produced at 12.6% fibroin exhibit a very high compressive modulus (50 MPa) making them good candidates as bone scaffold materials.
机译:在-S到-22°C之间的零度以下温度下,从冷冻的丝蛋白溶液(4.2-12.6%)中获得了具有显着性能的丝素蛋白冰霜。这是通过将乙二醇二缩水甘油醚(EGDE)添加到冷冻凝胶系统中来实现的。 EGDE触发纤维蛋白从无规卷曲到β-折叠结构的构象转变,从而引发纤维蛋白凝胶化。丝素蛋白冰冻蛋白的独特特征之一是其弹性,使它们能够抵抗完全压缩而不会产生任何裂纹,在此过程中,冰冻凝胶内部的水被去除。压缩的冷冻凝胶在卸载过程中立即膨胀以恢复其原始形状。通过冷冻干燥冷冻球菌获得的支架由规则的,相互连接的孔组成,这些孔的直径范围为50至10μm,可以通过合成参数进行调节。支架的机械抗压强度和模量随着孔径的减小而增加,即,随着胶凝温度的降低,或者随着饲料中纤维蛋白或EGDE浓度的增加而增加。纤维蛋白含量为12.6%的支架表现出非常高的压缩模量(50 MPa),使其成为骨支架材料的良好候选者。

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