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Electroactive biomimetic collagen-silver nanowire composite scaffolds

机译:电活性仿生collagen-silver纳米线复合支架

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摘要

Electroactive biomaterials are widely explored as bioelectrodes and as scaffolds for neural and cardiac regeneration. Most electrodes and conductive scaffolds for tissue regeneration are based on synthetic materials that have limited biocompatibility and often display large discrepancies in mechanical properties with the surrounding tissue causing problems during tissue integration and regeneration. This work shows the development of a biomimetic nanocomposite material prepared from self-assembled collagen fibrils and silver nanowires (AgNW). Despite consisting of mostly type I collagen fibrils, the homogeneously embedded AgNWs provide these materials with a charge storage capacity of about 2.3 mC cm(-2) and a charge injection capacity of 0.3 mC cm(-2), which is on par with bioelectrodes used in the clinic. The mechanical properties of the materials are similar to soft tissues with a dynamic elastic modulus within the lower kPa range. The nanocomposites also support proliferation of embryonic cardiomyocytes while inhibiting the growth of both Gram-negative Escherichia coli and Gram-positive Staphylococcus epidermidis. The developed collagen/AgNW composites thus represent a highly attractive bioelectrode and scaffold material for a wide range of biomedical applications.
机译:电活性生物材料被广泛研究bioelectrodes和作为神经和支架心脏再生。导电支架组织再生基于合成材料有限公司生物相容性和经常显示大在力学性能差异在组织周围组织造成问题集成和再生。仿生纳米复合材料的发展从自组装材料准备的胶原蛋白原纤维和银纳米线(AgNW)。主要是I型胶原纤维组成的,均匀嵌入式AgNWs提供这些材料的电荷存储能力2.3 mC厘米(2)和电荷注入的能力(2) 0.3 - mC厘米,这是与bioelectrodes持平应用于临床。的材料类似于软组织动态弹性模量的降低kPa的范围内。胚胎心肌细胞扩散抑制革兰氏阴性的增长大肠杆菌和革兰氏阳性葡萄球菌epidermidis。复合材料因此代表了一个极具吸引力的宽bioelectrode和支架材料范围的生物医学应用。

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