D. Silva Dos Santos, Vanessa Carvalho Coelho de Oliveira, K. Asensi, L. Vairo, A. B. Carvalho, A. C. Campos de Carvalho, R. Goldenberg
{"title":"人经血源性间充质细胞作为新的人胚胎干细胞喂养层体系。","authors":"D. Silva Dos Santos, Vanessa Carvalho Coelho de Oliveira, K. Asensi, L. Vairo, A. B. Carvalho, A. C. Campos de Carvalho, R. Goldenberg","doi":"10.3727/215517914X679265","DOIUrl":null,"url":null,"abstract":"Human embryonic stem cells (hESCs) in general require coculture with feeder layers in order to remain undifferentiated. However, the use of animal-derived feeder layers is incompatible with the clinical setting. The objective of this work was to investigate whether human menstrual blood-derived mesenchymal cells (MBMCs) can substitute mouse embryonic fibroblasts (MEFs) as a feeder layer for H9-hESCs. Both feeder cell types were isolated and cultured in DMEM F-12 and high glucose DMEM, respectively. After three passages, they were inactivated with mitomycin C. To test MBMC feeder layer capacity, hESCs were grown over MBMCs and MEFs under standard conditions. hESC growth, proliferation, survival, and maintenance of the undifferentiated state were evaluated. hESCs grown over MBMCs preserved their undifferentiated state presenting standard morphology, expressing alkaline phosphatase, transcription factors OCT3/4, SOX2, and NANOG by RT-PCR and SSEA-4 and OCT3/4 by immunofluorescence assays. It is noteworthy that none of the feeder cells expressed these proteins. The average colony size of the hESCs on MBMCs was higher when compared to MEFs (p < 0.05; mean ± SD, n = 3). Growth factor analysis revealed amplification of the transcripts for FGF-2, BMP4, TGF-β, VEGF, and PEDF by RT-PCR in MBMCs and MEFs before and after inactivation. Furthermore, similar embryoid body formation, size, and morphology were observed in both feeder layers. In addition, EBs expressed marker genes for the three germ layers cultured on both feeder cells. 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To test MBMC feeder layer capacity, hESCs were grown over MBMCs and MEFs under standard conditions. hESC growth, proliferation, survival, and maintenance of the undifferentiated state were evaluated. hESCs grown over MBMCs preserved their undifferentiated state presenting standard morphology, expressing alkaline phosphatase, transcription factors OCT3/4, SOX2, and NANOG by RT-PCR and SSEA-4 and OCT3/4 by immunofluorescence assays. It is noteworthy that none of the feeder cells expressed these proteins. The average colony size of the hESCs on MBMCs was higher when compared to MEFs (p < 0.05; mean ± SD, n = 3). Growth factor analysis revealed amplification of the transcripts for FGF-2, BMP4, TGF-β, VEGF, and PEDF by RT-PCR in MBMCs and MEFs before and after inactivation. Furthermore, similar embryoid body formation, size, and morphology were observed in both feeder layers. In addition, EBs expressed marker genes for the three germ layers cultured on both feeder cells. 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引用次数: 7
摘要
人胚胎干细胞(hESCs)通常需要与饲养层共培养以保持未分化。然而,动物源性喂养层的使用与临床环境不相容。本研究的目的是探讨人经血源性间充质细胞(MBMCs)能否替代小鼠胚胎成纤维细胞(mef)作为H9-hESCs的喂养层。分别在DMEM F-12和高糖DMEM中分离培养两种饲养细胞。三次传代后,用丝裂霉素c灭活。为了测试MBMC饲养层容量,在标准条件下,hESCs在MBMC和mef上生长。评估hESC的生长、增殖、存活和维持未分化状态。在mbmc上生长的hESCs保持未分化状态,呈现标准形态,通过RT-PCR表达碱性磷酸酶、转录因子OCT3/4、SOX2和NANOG,通过免疫荧光检测表达SSEA-4和OCT3/4。值得注意的是,没有喂食细胞表达这些蛋白。mbmc上hESCs的平均菌落大小高于mef (p < 0.05;mean±SD, n = 3)。生长因子分析显示,在mbmc和mef失活前后,RT-PCR扩增了FGF-2、BMP4、TGF-β、VEGF和PEDF的转录本。此外,两饲喂层的胚状体形成、大小和形态相似。此外,EBs在两种饲养细胞上均表达了3种胚层的标记基因。综上所述,mbmc能够以与mef相当的效率将hESCs维持在未分化状态。因此,mbmc是替代动物源性饲养层生长hESCs的合适选择。
Human Menstrual Blood-Derived Mesenchymal Cells as New Human Feeder Layer System for Human Embryonic Stem Cells.
Human embryonic stem cells (hESCs) in general require coculture with feeder layers in order to remain undifferentiated. However, the use of animal-derived feeder layers is incompatible with the clinical setting. The objective of this work was to investigate whether human menstrual blood-derived mesenchymal cells (MBMCs) can substitute mouse embryonic fibroblasts (MEFs) as a feeder layer for H9-hESCs. Both feeder cell types were isolated and cultured in DMEM F-12 and high glucose DMEM, respectively. After three passages, they were inactivated with mitomycin C. To test MBMC feeder layer capacity, hESCs were grown over MBMCs and MEFs under standard conditions. hESC growth, proliferation, survival, and maintenance of the undifferentiated state were evaluated. hESCs grown over MBMCs preserved their undifferentiated state presenting standard morphology, expressing alkaline phosphatase, transcription factors OCT3/4, SOX2, and NANOG by RT-PCR and SSEA-4 and OCT3/4 by immunofluorescence assays. It is noteworthy that none of the feeder cells expressed these proteins. The average colony size of the hESCs on MBMCs was higher when compared to MEFs (p < 0.05; mean ± SD, n = 3). Growth factor analysis revealed amplification of the transcripts for FGF-2, BMP4, TGF-β, VEGF, and PEDF by RT-PCR in MBMCs and MEFs before and after inactivation. Furthermore, similar embryoid body formation, size, and morphology were observed in both feeder layers. In addition, EBs expressed marker genes for the three germ layers cultured on both feeder cells. In conclusion, MBMCs are able to maintain hESCs in an undifferentiated state with comparable efficiency to MEFs. Therefore, MBMCs are a suitable alternative to animal-derived feeder layers for growing hESCs.