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本文引用的文献

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Differential genomic targeting of the transcription factor TAL1 in alternate haematopoietic lineages.转录因子TAL1在不同造血谱系中的差异基因组靶向作用。
EMBO J. 2011 Feb 2;30(3):494-509. doi: 10.1038/emboj.2010.342. Epub 2010 Dec 21.
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Inducible gene and shRNA expression in resident hematopoietic stem cells in vivo.在体诱导常驻造血干细胞中的基因和 shRNA 表达。
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Establishment of a normal hematopoietic and leukemia stem cell hierarchy.正常造血和白血病干细胞层级结构的建立。
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Production and titration of lentiviral vectors.慢病毒载体的生产与滴定
Curr Protoc Neurosci. 2006 Nov;Chapter 4:Unit 4.21. doi: 10.1002/0471142301.ns0421s37.
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Hematopoiesis: an evolving paradigm for stem cell biology.造血作用:干细胞生物学的一个不断发展的范式。
Cell. 2008 Feb 22;132(4):631-44. doi: 10.1016/j.cell.2008.01.025.
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Transcriptional control of erythropoiesis: emerging mechanisms and principles.红细胞生成的转录调控:新出现的机制与原理
Oncogene. 2007 Oct 15;26(47):6777-94. doi: 10.1038/sj.onc.1210761.
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Ex vivo generation of fully mature human red blood cells from hematopoietic stem cells.从造血干细胞体外生成完全成熟的人类红细胞。
Nat Biotechnol. 2005 Jan;23(1):69-74. doi: 10.1038/nbt1047. Epub 2004 Dec 26.
8
Caspase-3 has a nonapoptotic function in erythroid maturation.半胱天冬酶-3在红细胞成熟过程中具有非凋亡功能。
Blood. 2004 Jun 1;103(11):4310-6. doi: 10.1182/blood-2003-09-3362. Epub 2004 Feb 19.
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Maximal lentivirus-mediated gene transfer and sustained transgene expression in human hematopoietic primitive cells and their progeny.慢病毒介导的基因在人类造血原始细胞及其后代中的最大程度转移和持续转基因表达。
Mol Ther. 2002 Nov;6(5):673-7.
10
High-level transgene expression in human hematopoietic progenitors and differentiated blood lineages after transduction with improved lentiviral vectors.用改良慢病毒载体转导后,人类造血祖细胞和分化血细胞谱系中的高水平转基因表达。
Blood. 2000 Nov 15;96(10):3392-8.

慢病毒介导的人造血干细胞体外红细胞生成过程中的基因敲低。

Lentiviral-mediated knockdown during ex vivo erythropoiesis of human hematopoietic stem cells.

作者信息

Palii Carmen G, Pasha Roya, Brand Marjorie

机构信息

The Sprott Center for Stem Cell Research, Regenerative Medicine Program, Ottawa Hospital Research Institute.

出版信息

J Vis Exp. 2011 Jul 16(53):2813. doi: 10.3791/2813.

DOI:10.3791/2813
PMID:21785407
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3168199/
Abstract

Erythropoiesis is a commonly used model system to study cell differentiation. During erythropoiesis, pluripotent adult human hematopoietic stem cells (HSCs) differentiate into oligopotent progenitors, committed precursors and mature red blood cells. This process is regulated for a large part at the level of gene expression, whereby specific transcription factors activate lineage-specific genes while concomitantly repressing genes that are specific to other cell types. Studies on transcription factors regulating erythropoiesis are often performed using human and murine cell lines that represent, to some extent, erythroid cells at given stages of differentiation. However transformed cell lines can only partially mimic erythroid cells and most importantly they do not allow one to comprehensibly study the dynamic changes that occur as cells progress through many stages towards their final erythroid fate. Therefore, a current challenge remains the development of a protocol to obtain relatively homogenous populations of primary HSCs and erythroid cells at various stages of differentiation in quantities that are sufficient to perform genomics and proteomics experiments. Here we describe an ex vivo cell culture protocol to induce erythroid differentiation from human hematopoietic stem/progenitor cells that have been isolated from either cord blood, bone marrow, or adult peripheral blood mobilized with G-CSF (leukapheresis). This culture system, initially developed by the Douay laboratory, uses cytokines and co-culture on mesenchymal cells to mimic the bone marrow microenvironment. Using this ex vivo differentiation protocol, we observe a strong amplification of erythroid progenitors, an induction of differentiation exclusively towards the erythroid lineage and a complete maturation to the stage of enucleated red blood cells. Thus, this system provides an opportunity to study the molecular mechanism of transcriptional regulation as hematopoietic stem cells progress along the erythroid lineage. Studying erythropoiesis at the transcriptional level also requires the ability to over-express or knockdown specific factors in primary erythroid cells. For this purpose, we use a lentivirus-mediated gene delivery system that allows for the efficient infection of both dividing and non-dividing cells. Here we show that we are able to efficiently knockdown the transcription factor TAL1 in primary human erythroid cells. In addition, GFP expression demonstrates an efficiency of lentiviral infection close to 90%. Thus, our protocol provides a highly useful system for characterization of the regulatory network of transcription factors that control erythropoiesis.

摘要

红细胞生成是研究细胞分化常用的模型系统。在红细胞生成过程中,多能成人造血干细胞(HSCs)分化为寡能祖细胞、定向祖细胞和成熟红细胞。这个过程在很大程度上受基因表达水平调控,特定转录因子激活谱系特异性基因,同时抑制其他细胞类型特异性的基因。关于调节红细胞生成的转录因子的研究通常使用人和小鼠细胞系,这些细胞系在一定程度上代表特定分化阶段的红系细胞。然而,转化细胞系只能部分模拟红系细胞,最重要的是,它们不允许人们全面研究细胞在向最终红系命运发展的多个阶段中发生的动态变化。因此,当前的一个挑战仍然是开发一种方案,以获得数量足够进行基因组学和蛋白质组学实验的、处于不同分化阶段的相对均一的原代HSCs和红系细胞群体。在这里,我们描述了一种体外细胞培养方案,用于诱导从脐带血、骨髓或用G-CSF动员的成人外周血(白细胞分离术)中分离的人造血干/祖细胞向红系分化。这个最初由Douay实验室开发的培养系统,使用细胞因子并与间充质细胞共培养来模拟骨髓微环境。使用这个体外分化方案,我们观察到红系祖细胞的强烈扩增、仅向红系谱系的分化诱导以及向去核红细胞阶段的完全成熟。因此,这个系统为研究造血干细胞沿红系谱系发展过程中转录调控的分子机制提供了一个机会。在转录水平研究红细胞生成还需要能够在原代红系细胞中过表达或敲低特定因子。为此,我们使用慢病毒介导的基因递送系统,该系统能够有效感染分裂和非分裂细胞。在这里我们表明,我们能够在原代人红系细胞中有效敲低转录因子TAL1。此外,GFP表达表明慢病毒感染效率接近90%。因此,我们的方案为表征控制红细胞生成的转录因子调控网络提供了一个非常有用的系统。