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首页> 外文期刊>Journal of biomedical materials research, Part A >Culturing adult human bone marrow stem cells on gelatin scaffold with pNIPAAm as transplanted grafts for skin regeneration
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Culturing adult human bone marrow stem cells on gelatin scaffold with pNIPAAm as transplanted grafts for skin regeneration

机译:用pNIPAAm作为明胶移植物在明胶支架上培养成年人类骨髓干细胞

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Skin tissue engineering is a possible solution for the treatment of extensive skin defect. The ultimate goal of skin tissue engineering is to restore the complete functions of native skin, but until now the structures and functions of skins are only partially restored. By negative immunoselection (CD45 and glycophorin A), we isolated and cultivated adult human bone marrow stem cells (hBMSCs) that are of multilineage differentiation potential. In this study, we first demonstrated that by using gelatin/thermo-sensitive poly N-isopropylacrylamide (pNIPAAm) and the immunocom-promised mice model, the hBMSCs possess the differentiation potential of epidermis and the capability of healing skin wounds. The in vitro observations and the results of the scanning electron microscope showed that the hBMSCs can attach and proliferate in the gelatin/thermo-sensitive pNIPAAm. To further monitor the in vivo growth effect of the hBMSCs in the skin-defected nude mice, the green fluorescence protein (GFP) gene was transduced into the hBMSCs by the murine stem cell viral vector. The results showed that the rates of cell growth and wound recovery in the hBMSC-treated group were significantly higher than those in the control group, which was only treated with the gelatin/pNI-PAAm (p < 0.01). More importantly, the re-epithelialization markers of human pan-cytokeratin and E-cadherin were significantly increased on day 7, day 14, and day 21 after the hBMSC-scaffold with the pNIPAAM in the mice with skin defects (p < 0.05). Moreover, the stem cell markers of human CD13 and CD105 were gradually decreased during the period of wound healing. In sum, this novel method provides a transferring system for cell therapies and maintains its temperature-sensitive property of easy-peeling by lower-temperature treatment. In addition, the in vitro and in vivo GFP imaging systems provide a new imaging modality for understanding the differentiation process and the effective expression of stem cells in wound healing.
机译:皮肤组织工程学是治疗广泛皮肤缺陷的可能解决方案。皮肤组织工程的最终目标是恢复天然皮肤的全部功能,但是直到现在,皮肤的结构和功能仍只能部分恢复。通过阴性免疫选择(CD45和糖蛋白A),我们分离并培养了具有多系分化潜能的成年人类骨髓干细胞(hBMSC)。在这项研究中,我们首先证明了通过使用明胶/热敏性聚N-异丙基丙烯酰胺(pNIPAAm)和免疫承诺的小鼠模型,hBMSCs具有表皮的分化潜能和治愈皮肤伤口的能力。体外观察和扫描电子显微镜的结果表明,hBMSCs可以附着并在明胶/热敏pNIPAAm中增殖。为了进一步监测hBMSCs在有皮肤缺陷的裸鼠中的体内生长作用,通过鼠干细胞病毒载体将绿色荧光蛋白(GFP)基因转导到hBMSCs中。结果显示,hBMSC治疗组的细胞生长和伤口恢复率显着高于仅用明胶/ pNI-PAAm治疗的对照组(p <0.01)。更重要的是,在具有皮肤缺陷的小鼠中,在带有pNIPAAM的hBMSC支架后的第7天,第14天和第21天,人泛细胞角蛋白和E-钙粘着蛋白的再上皮标记显着增加(p <0.05)。此外,在伤口愈合期间,人CD13和CD105的干细胞标记逐渐减少。总之,该新方法提供了一种用于细胞疗法的转移系统,并通过低温处理保持了其易剥离的温度敏感性。此外,体外和体内GFP成像系统为了解伤口愈合过程中干细胞的分化过程和有效表达提供了一种新的成像方式。

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