碳纳米管
材料科学
自愈水凝胶
纳米技术
组织工程
复合数
脚手架
刚度
流变学
表征(材料科学)
合理设计
复合材料
生物医学工程
高分子化学
医学
作者
Maruthanayagam Saranya,Janne T. Koivisto,Ana C.M. Carvalho,F. Sato,Andrea Lassenberger,Lionel Porcar,Baleeswaraiah Muchharla,Saikat Talapatra,Birgitte H. McDonagh,Lauriane Janssen,Olli Pitkänen,Minna Kellomäki,Krisztián Kordás,Gabriela S. Lorite
标识
DOI:10.1016/j.compositesb.2022.110398
摘要
Injectable scaffolds are a promising strategy to restore and regenerate damaged and diseased tissues. They require minimally invasive procedure and allow the formation of an in-situ structure of any shape. However, the formation of 3D in-situ structure with aligned morphologies using a method which could be easily transferred to clinical settings remains a challenge. Herein, the rational design of an aligned injectable hydrogel-based scaffold via remote-induced alignment is reported. Carboxylated multi-walled carbon nanotubes (cMWCNT) are aligned into hydrogel via low magnetic field. The uniform dispersion and alignment of cMWCNT into the hydrogel are clearly demonstrated by small angle neutron scattering. The obtained aligned cMWCNT-embodied hydrogel is stable over 7 days at room temperature and as well at body temperature (i.e. 37 °C). As unique approach, the formation of MWCNT-hydrogel composite is investigated combining rheology with molecular dynamic and quantum mechanical calculations. The increase of MWCNT concentration into the hydrogel decreases the total energy promoting structural stabilization and increase of stiffness. The remote aligning of injectable hydrogel-based scaffold opens up horizons in the engineering of functional tissues which requires specific cell orientation.
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