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Biodegradable Hydrogels Loaded with Magnetically Responsive Microspheres as 2D and 3D Scaffolds

机译:可生物降解的水凝胶加载磁响应微球作为2D和3D支架

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摘要

Scaffolds play an essential role in the success of tissue engineering approaches. Their intrinsic properties are known to influence cellular processes such as adhesion, proliferation and differentiation. Hydrogel-based matrices are attractive scaffolds due to their high-water content resembling the native extracellular matrix. In addition, polymer-based magnetoelectric materials have demonstrated suitable bioactivity, allowing to provide magnetically and mechanically activated biophysical electrical stimuli capable of improving cellular processes. The present work reports on a responsive scaffold based on poly (L-lactic acid) (PLLA) microspheres and magnetic microsphere nanocomposites composed of PLLA and magnetostrictive cobalt ferrites (CoFe2O4), combined with a hydrogel matrix, which mimics the tissue’s hydrated environment and acts as a support matrix. For cell proliferation evaluation, two different cell culture conditions (2D and 3D matrices) and two different strategies, static and dynamic culture, were applied in order to evaluate the influence of extracellular matrix-like confinement and the magnetoelectric/magneto-mechanical effect on cellular behavior. MC3T3-E1 proliferation rate is increased under dynamic conditions, indicating the potential use of hydrogel matrices with remotely stimulated magnetostrictive biomaterials for bone tissue engineering.
机译:脚手架在组织工程方法的成功中发挥着重要作用。已知其本质性质会影响细胞过程,例如粘附,增殖和分化。由于它们的高水含量,水凝胶基矩阵是具有类似天然细胞外基质的高含水量。此外,基于聚合物基磁电材料已经证明了合适的生物活性,允许提供能够改善细胞过程的磁性和机械活性的生物物理电刺激。本工作报告基于聚(L-乳酸)(PLLA)微球和由PLLA和磁致伸缩钴铁氧体(COFE2O4)组成的磁性微球纳米复合材料的响应支架,与水凝胶基质组成,其模仿组织的水合环境和作用作为支持矩阵。对于细胞增殖评估,应用两种不同的细胞培养条件(2D和3D基质)和两种不同的策略,静态和动态培养,以评估细胞外基质样限制和磁电/磁力机械效应对细胞的影响行为。在动态条件下,MC3T3-E1增殖率增加,表明水凝胶基质具有用于骨组织工程的远程刺激的磁致伸缩生物材料。

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