首页> 外文期刊>Acta biomaterialia >Gene-activated and cell-migration guiding PEG matrices based on three dimensional patterning of RGD peptides and DNA complexes
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Gene-activated and cell-migration guiding PEG matrices based on three dimensional patterning of RGD peptides and DNA complexes

机译:基于RGD肽和DNA复合物的三维模式的基因激活和细胞迁移指导PEG基质

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摘要

Essential to the design of genetic bioreactors used in the human body is a consideration of how the properties of biomaterials can combine to envelope, spatially guide, reprogramme by gene transfer, and then release cells. In order to approach this goal, poly(ethylene glycol) (PEG) matrices with modulated structural features and defined spatial patterns of bioactive signals have been designed and produced. In particular, within such PEG matrices, both an adhesive RGD peptide gradient, to directionally attract NIH3T3 cells, and a designed spatial distribution of immobilized poly(ethylenimine) (PEI)/DNA complexes, to obtain a localized transfection, have been realized. These bioactive biomaterials have been designed bearing in mind that cells following an RGD gradient migrate through the matrix, in which they find the bound DNA and become transfected. Both cell migration and transfection have been monitored by fluorescence microscopy. Results show that this system is able to envelope cells, spatially guide them towards the immobilized gene complexes and locally transfect them. Therefore, the system, acting as a genetic bioreactor potentially useful for the regulation of biology at a distance, could be used to directly control cell trafficking and activation in the human body, and has many potential biomedical applications.
机译:设计人体中使用的遗传生物反应器的关键是要考虑生物材料的特性如何结合起来以进行包膜,空间引导,通过基因转移重新编程然后释放细胞。为了实现该目标,已经设计和生产了具有调节的结构特征和生物活性信号的确定空间模式的聚乙二醇(PEG)基质。尤其是,在这种PEG基质中,已经实现了可定向吸引NIH3T3细胞的粘附性RGD肽梯度和固定化的聚乙烯亚胺(PEI)/ DNA复合物的设计空间分布,从而获得了局部转染。设计这些生物活性生物材料时要牢记,遵循RGD梯度的细胞会迁移穿过基质,在基质中找到结合的DNA并被转染。细胞迁移和转染均已通过荧光显微镜监测。结果表明,该系统能够包裹细胞,在空间上将其引导向固定化的基因复合物并局部转染。因此,该系统可以作为遗传生物反应器,潜在地用于远距离生物学调节,可用于直接控制人体中的细胞运输和激活,并具有许多潜在的生物医学应用。

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