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磁场对 SMART 丝素基支架内磁性纳米粒子修饰的 3T3-E1 前成骨细胞的影响。

Impact of the magnetic field on 3T3-E1 preosteoblasts inside SMART silk fibroin-based scaffolds decorated with magnetic nanoparticles.

机构信息

Faculty of Applied Chemistry and Materials Science, Politehnica University of Bucharest, 1-7 Gh. Polizu Street, Romania.

Faculty of Applied Chemistry and Materials Science, Politehnica University of Bucharest, 1-7 Gh. Polizu Street, Romania; Advanced Polymer Materials Group, Politehnica University of Bucharest, 1-7 Gh. Polizu Street, Romania.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 May;110:110714. doi: 10.1016/j.msec.2020.110714. Epub 2020 Jan 31.

Abstract

This paper reports the impact of the magnetic field on 3T3-E1 preosteoblasts within silk-fibroin scaffolds decorated with magnetic nanoparticles. Scaffolds were prepared from silk fibroin and poly(2-hydroxyethyl methacrylate) template in which magnetite nanoparticles were embedded. The presence of the magnetite specific peaks within scaffolds compositions was evidenced by RAMAN analysis. Structural investigation was done by XRD analysis and morphological information including internal structure was obtained through SEM analysis. Geometrical evaluation (size and shape), crystalline structure of magnetic nanoparticles and the morphology of the silk fibroin scaffolds were investigated by HR-TEM. Magnetic nanoparticles were distributed within scaffolds structure. Biomineralization of hydroxyapatite on silk fibroin scaffolds with and without magnetic nanoparticles was investigated by an alternate soaking process. SEM images showed that the magnetic scaffolds were covered in an almost continuously film, which has a phase with nanostructured characteristics. This phase, which has as main components Ca and P, is made of lamellar formations. The design of an original magnetic 3D cell culture setup allowed us to observe cellular modifications under the exposure to magnetic field in the presence of magnetic silk fibroin biomaterials. The cellular proliferation potential of 3T3-E1 cell line was found increased under the magnetic field, especially in the presence of the magnetite nanoparticles. In addition, we showed that the low static magnetic field positively impacts on the osteogenic differentiation potential of the cells inside the biomimetic magnetic scaffolds.

摘要

本文报道了磁场对丝素-聚(2-羟乙基甲基丙烯酸酯)模板中嵌入磁性纳米粒子的 3T3-E1 前成骨细胞的影响。支架由丝素和聚(2-羟乙基甲基丙烯酸酯)模板制备,其中嵌入了磁铁矿纳米粒子。拉曼分析证实了支架成分中存在磁铁矿的特征峰。通过 XRD 分析进行结构研究,通过 SEM 分析获得包括内部结构在内的形态信息。通过高分辨率透射电子显微镜(HR-TEM)研究了磁性纳米粒子的几何评估(尺寸和形状)、结晶结构和丝素支架的形态。磁性纳米粒子分布在支架结构中。通过交替浸泡法研究了具有和不具有磁性纳米粒子的丝素支架的羟基磷灰石的生物矿化。SEM 图像显示,磁性支架几乎被连续的薄膜覆盖,该薄膜具有纳米结构特征的相。该相的主要成分是 Ca 和 P,由层状结构组成。设计了一种原始的磁性 3D 细胞培养装置,使我们能够在存在磁性丝素生物材料的情况下观察到磁场暴露下细胞的变化。发现 3T3-E1 细胞系在磁场下的细胞增殖潜力增加,尤其是在存在磁铁矿纳米粒子的情况下。此外,我们表明,低静磁场对仿生磁性支架内细胞的成骨分化潜力有积极影响。

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