基于胶原蛋白氧化铁纳米颗粒的铁凝胶:具有生物驱动潜力的大可逆磁应变

Q1 Materials Science Multifunctional Materials Pub Date : 2020-07-28 DOI:10.1088/2399-7532/abaa2d
P. Jauch, A. Weidner, S. Riedel, Nils Wilharm, S. Dutz, S. G. Mayr
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引用次数: 4

摘要

刺激响应聚合物水凝胶等智能材料为组织工程和再生医学提供了独特的可能性。然而,由于大多数合成聚合物系统及其降解产物缺乏完全的生物相容性和生物降解性,本研究旨在基于丰富的天然生物聚合物胶原蛋白合成一种高磁响应水凝胶。作为椎基底细胞外基质的主要成分,它具有良好的生物相容性。结合磁性氧化铁纳米颗粒,可以设计出一种新型的智能纳米生物铁凝胶。在保持其基本生物物理特性和与活细胞的相互作用的同时,这种胶原纳米颗粒水凝胶可以被压缩到其原始尺寸的38%,并在适当的磁场中恢复到95%。除了这种场景的现象学之外,在网络模型的框架内还讨论了潜在的物理场景。观察到的高达150%的可逆峰值应变为生物医学驱动、软机器人等领域开辟了可能性。
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Collagen–iron oxide nanoparticle based ferrogel: large reversible magnetostrains with potential for bioactuation
Smart materials such as stimuli responsive polymeric hydrogels offer unique possibilities for tissue engineering and regenerative medicine. As, however, most synthetic polymer systems and their degradation products lack complete biocompatibility and biodegradability, this study aims to synthesize a highly magnetic responsive hydrogel, based on the abundant natural biopolymer collagen. As the main component of vertebratal extracellular matrix, it reveals excellent biocompatibility. In combination with incorporated magnetic iron oxide nanoparticles, a novel smart nano-bio-ferrogel can be designed. While retaining its basic biophysical properties and interaction with living cells, this collagen-nanoparticle hydrogel can be compressed to 38% of its original size and recovers to 95% in suitable magnetic fields. Besides the phenomenology of this scenario, the underlying physical scenarios are also discussed within the framework of network models. The observed reversible peak strains as large as 150% open up possibilities for the fields of biomedical actuation, soft robotics and beyond.
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来源期刊
Multifunctional Materials
Multifunctional Materials Materials Science-Materials Science (miscellaneous)
CiteScore
12.80
自引率
0.00%
发文量
9
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