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Efficient preparation and labeling of human induced pluripotent stem cells by nanotechnology

机译:纳米技术有效制备和标记人诱导多能干细胞

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摘要

Efficient preparation and labeling of human induced pluripotent stem (iPS) cells is a great challenge in stem cell research and development. With the aim of investigating the feasibility of using nanotechnology to enhance the preparation efficiency of iPS cells and to label iPS cells for long-term tracing and imaging, in this paper, four transcription factor genes, ie, Oct4, Sox2, LIN28, and Nanog, and packaging plasmids such as PSPAX2 and PMD2.G were cotransfected into 293T cells using Generation 5.0 polyamidoamine dendrimer-modified magnetic nanoparticles (dMNPs) as a delivery system. The resultant supernatant liquids were incubated with human fibroblast cells at 37°C for 21 days, then the embryonic stem (ES) cell-like clones were screened, cultured, and identified. Finally, the prepared iPS cells were labeled with fluorescent magnetic nanoparticles (FMNPs). The results showed that dMNPs can efficiently deliver all vectors into 293T cells. The resultant lentiviruses’ titers were 10-fold more than those based on Lipofectamine™ 2000. Reverse transcription polymerase chain reaction analysis showed that four genes (Oct4, Sox2, LIN28, and Nanog) exhibited different expressions in iPS cells. Immunostaining analysis showed that specific surface markers of ES cells such as SSEA-3, SSEA-4, Tra-1-60, and Tra-1-81 were positive in iPS cells, and the terotomas were formed in NOD-SCID mice that were implanted with iPS cells. Red fluorescent signals could be observed in iPS cells labeled with FMNPs by fluorescent microscopy, and the magnetic signals were detected in labeled iPS cells by magnetic resonance imaging. In conclusion, human iPS cells can be efficiently generated using polyamidoamine dMNPs and lentivirus and labeled with FMNPs for long-term observation and tracking, which has great potential application in the research and development of stem cells in the near future.
机译:人诱导多能干(iPS)细胞的有效制备和标记是干细胞研究和开发中的巨大挑战。为了研究使用纳米技术提高iPS细胞的制备效率并标记iPS细胞以进行长期追踪和成像的可行性,在本文中,我们研究了四个转录因子基因,即Oct4,Sox2,LIN28和Nanog。 ,并将包装质粒(如PSPAX2和PMD2.G)以5.0代聚酰胺酰胺树状大分子修饰的磁性纳米粒子(dMNPs)作为递送系统共转染到293T细胞中。将所得的上清液与人成纤维细胞在37℃下孵育21天,然后筛选,培养和鉴定胚胎干(ES)细胞样克隆。最后,用荧光磁性纳米颗粒(FMNP)标记制备的iPS细胞。结果表明,dMNP可以有效地将所有载体递送至293T细胞。产生的慢病毒的滴度比基于Lipofectamine™2000的慢。逆转录聚合酶链反应分析显示,四个基因(Oct4,Sox2,LIN28和Nanog)在iPS细胞中表现出不同的表达。免疫染色分析显示,iPS细胞中ES细胞的特定表面标记(如SSEA-3,SSEA-4,Tra-1-60和Tra-1-81)呈阳性,并且在NOD-SCID小鼠体内形成了畸胎瘤植入了iPS细胞。通过荧光显微镜在标记有FMNP的iPS细胞中可以观察到红色荧光信号,而在磁共振成像中可以在标记的iPS细胞中检测到磁信号。综上所述,使用聚酰胺酰胺dMNPs和慢病毒可以有效地产生人iPS细胞,并用FMNPs进行标记以进行长期观察和跟踪,这在不久的将来将在干细胞的研究和开发中具有巨大的潜在应用价值。

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