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人类胚胎干细胞的来源、衍生及培养

Sources, derivation, and culture of human embryonic stem cells.

作者信息

Amit Michal, Itskovitz-Eldor Joseph

机构信息

Department of Obstetrics and Gynecology, Rambam Medical Center, Haifa, and the Sohnis and Forman Families Stem Cell Center, Bruce Rappaport Faculty of Medicine, Technion-Israel Institute of Technology, Haifa, Israel.

出版信息

Semin Reprod Med. 2006 Nov;24(5):298-303. doi: 10.1055/s-2006-954939.

Abstract

Human embryonic stem cells (hESCs) are immortal cells capable of perpetual self-renewal in culture while maintaining their undifferentiated state, high telomerase activity, normal karyotype, and specific pattern expression of embryonic surface markers and pluripotent transcription factors such as Oct-4 and Nanog. Since their first derivation in 1998, hundreds of hESC lines have been derived and characterized. Normal surplus embryos from IVF programs are the main source for the derivation of hESC lines but cell lines from poor-quality discarded embryos or embryos carrying genetic defects following preimplantation genetic diagnosis were also isolated. Such isolation is usually accomplished by either mechanical or immunosurgical removal of the trophectoderm and culture of the inner cell mass on inactivated feeder cells. In light of the future need for clinical-grade cells, the subject of defining specific culture conditions has been addressed widely. Indeed, derivation and maintenance of hESCs without feeder cells and in media free of animal products have been attained recently. This well-defined culture system may facilitate research and clinical applications, and use the remarkable potential of these exceptional cells to its fullest in both the laboratory and the clinic.

摘要

人类胚胎干细胞(hESCs)是永生细胞,能够在培养中持续自我更新,同时保持未分化状态、高端粒酶活性、正常核型以及胚胎表面标志物和多能转录因子(如Oct-4和Nanog)的特定模式表达。自1998年首次获得以来,已获得并鉴定了数百个人类胚胎干细胞系。体外受精计划中的正常多余胚胎是人类胚胎干细胞系的主要来源,但也从质量差的废弃胚胎或植入前基因诊断后携带遗传缺陷的胚胎中分离出了细胞系。这种分离通常通过机械或免疫手术去除滋养外胚层,并将内细胞团培养在灭活的饲养细胞上来完成。鉴于未来对临床级细胞的需求,确定特定培养条件的问题已得到广泛探讨。事实上,最近已经实现了在无饲养细胞且无动物产品的培养基中获得和维持人类胚胎干细胞。这种明确的培养系统可能会促进研究和临床应用,并在实验室和临床中充分发挥这些特殊细胞的巨大潜力。

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