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Combining PLGA Scaffold and MSCs for Brain Tissue Engineering: A Potential Tool for Treatment of Brain Injury

机译:组合PLGA支架和MSCs用于脑组织工程:一种治疗脑损伤的潜在工具

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摘要

Nerve tissue engineering is an important strategy for the treatment of brain injuries. Mesenchymal stem cell (MSC) transplantation has been proven to be able to promote repair and functional recovery of brain damage, and poly (lactic-co-glycolic acid) (PLGA) has also been found to have the capability of bearing cells. In the present study, to observe the ability of PLGA scaffold in supporting the adherent growth of MSCs and neurons in vivo and vitro and to assess the effects of PLGA scaffold on proliferation and neural differentiation of MSCs, this study undertakes the following steps. First, MSCs and neurons were cultured and labeled with green fluorescent protein (GFP) or otherwise identified and the PLGA scaffold was synthesized. Next, MSCs and neurons were inoculated on PLGA scaffolds and their adhesion rates were investigated and the proliferation of MSCs was evaluated by using MTT assay. After MSCs were induced by a neural induction medium, the morphological change and neural differentiation of MSCs were detected using scanning electron microscopy (SEM) and immunocytochemistry, respectively. Finally, cell migration and adhesion in the PLGA scaffold in vivo were examined by immunohistochemistry, nuclear staining, and SEM. The experimental results demonstrated that PLGA did not interfere with the proliferation and neural differentiation of MSCs and that MSCs and neuron could grow and migrate in PLGA scaffold. These data suggest that the MSC-PLGA complex may be used as tissue engineering material for brain injuries.
机译:神经组织工程是治疗脑损伤的重要策略。被证明的间充质干细胞(MSC)移植能够促进脑损伤的修复和功能恢复,并且还发现了聚(乳酸共聚糖酸)(PLGA)具有轴承细胞的能力。在本研究中,观察PLGA支架在体内和体外粘附生长的粘附生长,并评估PLGA支架对MSCs的增殖和神经分化的影响,这项研究进行了以下步骤。首先,培养MSC和神经元并用绿色荧光蛋白(GFP)标记或以其他方式鉴定,并合成PLGA支架。接下来,接种在PLGA支架上接种MSC和神经元,并研究其粘合速率,并通过使用MTT测定来评价MSC的增殖。在通过神经感应培养基诱导MSCs之后,使用扫描电子显微镜(SEM)和免疫细胞化学检测MSCs的形态变化和神经分化。最后,通过免疫组织化学,核染色和SEM检查体内PLGA支架中的细胞迁移和粘附。实验结果表明,PLGA不会干扰MSCs的增殖和神经分化,并且MSC和神经元可以在PLGA支架中生长和迁移。这些数据表明,MSC-PLGA复合物可用作脑损伤的组织工程材料。

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  • 来源
    《Stem cells international》 |2018年第5期|共8页
  • 作者单位

    Southwest Med Univ Affiliated Hosp Dept Endocrinol Taiping St Luzhou 646000 Peoples R China;

    Southwest Med Univ Dept Anat Zhongshan Rd Luzhou 646000 Peoples R China;

    Southwest Med Univ Dept Anat Zhongshan Rd Luzhou 646000 Peoples R China;

    Southwest Med Univ Dept Anat Zhongshan Rd Luzhou 646000 Peoples R China;

    Southwest Med Univ Dept Anat Zhongshan Rd Luzhou 646000 Peoples R China;

    Southwest Med Univ Preclin Med Res Ctr Dept Neurobiol Zhongshan Rd Luzhou 646000 Peoples R;

    Univ Manitoba Coll Med Dept Human Anat &

    Cell Sci Winnipeg MB Canada;

    Southwest Med Univ Preclin Med Res Ctr Dept Neurobiol Zhongshan Rd Luzhou 646000 Peoples R;

    Southwest Med Univ Preclin Med Res Ctr Dept Neurobiol Zhongshan Rd Luzhou 646000 Peoples R;

    Southwest Med Univ Dept Anat Zhongshan Rd Luzhou 646000 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物工程学(生物技术);
  • 关键词

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