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本文引用的文献

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Vectorology and factor delivery in induced pluripotent stem cell reprogramming.诱导多能干细胞重编程中的载体学与因子递送
Stem Cells Dev. 2014 Jun 15;23(12):1301-15. doi: 10.1089/scd.2013.0621. Epub 2014 Apr 16.
2
Gammaretroviral vector encoding a fluorescent marker to facilitate detection of reprogrammed human fibroblasts during iPSC generation.编码荧光标记物的γ逆转录病毒载体,以促进 iPSC 生成过程中重编程人成纤维细胞的检测。
PeerJ. 2013 Dec 10;1:e224. doi: 10.7717/peerj.224. eCollection 2013.
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Chemical approaches to stem cell biology and therapeutics.化学方法在干细胞生物学和治疗学中的应用。
Cell Stem Cell. 2013 Sep 5;13(3):270-83. doi: 10.1016/j.stem.2013.08.002.
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Efficient generation of human iPSCs by a synthetic self-replicative RNA.通过合成自我复制 RNA 高效生成人类 iPSCs。
Cell Stem Cell. 2013 Aug 1;13(2):246-54. doi: 10.1016/j.stem.2013.06.001.
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Generation and characterization of transgene-free human induced pluripotent stem cells and conversion to putative clinical-grade status.无转基因人类诱导多能干细胞的产生与特性鉴定及向推定临床级状态的转化。
Stem Cell Res Ther. 2013 Jul 26;4(4):87. doi: 10.1186/scrt246.
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Pluripotent stem cells induced from mouse somatic cells by small-molecule compounds.小分子化合物诱导的小鼠体细胞多能干细胞。
Science. 2013 Aug 9;341(6146):651-4. doi: 10.1126/science.1239278. Epub 2013 Jul 18.
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High-resolution analysis with novel cell-surface markers identifies routes to iPS cells.高分辨率分析新型细胞表面标志物鉴定 iPS 细胞的途径。
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8
Sequential introduction of reprogramming factors reveals a time-sensitive requirement for individual factors and a sequential EMT-MET mechanism for optimal reprogramming.连续引入重编程因子揭示了各个因子的时间敏感性需求,以及最优重编程的连续 EMT-MET 机制。
Nat Cell Biol. 2013 Jul;15(7):829-38. doi: 10.1038/ncb2765. Epub 2013 May 26.
9
Generation of transgene-free iPSC lines from human normal and neoplastic blood cells using episomal vectors.使用游离型载体从人正常和肿瘤血细胞中生成无转基因的诱导多能干细胞系。
Methods Mol Biol. 2013;997:163-76. doi: 10.1007/978-1-62703-348-0_13.
10
An efficient nonviral method to generate integration-free human-induced pluripotent stem cells from cord blood and peripheral blood cells.一种高效的非病毒方法,可从脐血和外周血细胞中生成无整合的人诱导多能干细胞。
Stem Cells. 2013 Mar;31(3):458-66. doi: 10.1002/stem.1293.

条条大路通诱导多能干细胞:诱导多能干细胞产生技术

All roads lead to induced pluripotent stem cells: the technologies of iPSC generation.

作者信息

Hu Kejin

机构信息

Department of Biochemistry and Molecular Genetics, UAB Stem Cell Insitute, School of Medicine, University of Alabama at Birmingham , Birmingham, Alabama.

出版信息

Stem Cells Dev. 2014 Jun 15;23(12):1285-300. doi: 10.1089/scd.2013.0620. Epub 2014 Mar 21.

DOI:10.1089/scd.2013.0620
PMID:24524728
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4046204/
Abstract

Generation of induced pluripotent stem cells (iPSCs) via the ectopic expression of reprogramming factors is a simple, advanced, yet often perplexing technology due to low efficiency, slow kinetics, and the use of numerous distinct systems for factor delivery. Scientists have used almost all available approaches for the delivery of reprogramming factors. Even the well-established retroviral vectors confuse some scientists due to different tropisms in use. The canonical virus-based reprogramming poses many problems, including insertional mutagenesis, residual expression and re-activation of reprogramming factors, uncontrolled silencing of transgenes, apoptosis, cell senescence, and strong immunogenicity. To eliminate or alleviate these problems, scientists have tried various other approaches for factor delivery and transgene removal. These include transient transfection, nonintegrating viral vectors, Cre-loxP excision of transgenes, excisable transposon, protein transduction, RNA transfection, microRNA transfection, RNA virion, RNA replicon, nonintegrating replicating episomal plasmids, minicircles, polycistron, and preintegration of inducible reprogramming factors. These alternative approaches have their own limitations. Even iPSCs generated with RNA approaches should be screened for possible transgene insertions mediated by active endogenous retroviruses in the human genome. Even experienced researchers may encounter difficulty in selecting and using these different technologies. This survey presents overviews of iPSC technologies with the intention to provide a quick yet comprehensive reference for both new and experienced reprogrammers.

摘要

通过重编程因子的异位表达来生成诱导多能干细胞(iPSC)是一项简单、先进但常常令人困惑的技术,这是因为其效率低、动力学缓慢,并且使用多种不同的系统来递送因子。科学家们几乎尝试了所有可用的方法来递送重编程因子。即使是成熟的逆转录病毒载体,由于使用的嗜性不同,也会让一些科学家感到困惑。基于经典病毒的重编程存在许多问题,包括插入诱变、重编程因子的残留表达和重新激活、转基因的失控沉默、细胞凋亡、细胞衰老以及强烈的免疫原性。为了消除或减轻这些问题,科学家们尝试了各种其他的因子递送和转基因去除方法。这些方法包括瞬时转染、非整合病毒载体、通过Cre-loxP切除转基因片段、可切除转座子、蛋白质转导、RNA转染、微小RNA转染、RNA病毒体、RNA复制子、非整合复制型游离质粒、微小环、多顺反子以及诱导性重编程因子的预整合。这些替代方法都有其自身的局限性。即使是通过RNA方法产生的iPSC,也应该筛查是否存在由人类基因组中活跃的内源性逆转录病毒介导的转基因插入。即使是经验丰富的研究人员在选择和使用这些不同技术时也可能会遇到困难。本综述概述了iPSC技术,旨在为新的和经验丰富的重编程研究人员提供一个快速而全面的参考。