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转录因子GATA-1与红细胞生成

Transcription factor GATA-1 and erythroid development.

作者信息

Simon M C

机构信息

Division of Hematology-Oncology, Children's Hospital, Boston, Massachusetts.

出版信息

Proc Soc Exp Biol Med. 1993 Feb;202(2):115-21. doi: 10.3181/00379727-202-43519a.

Abstract

In summary, we derived an experimental system that allows us to dissect the function of GATA-1 in red cell development at a genetic level. We have established the essential nature of GATA-1 during both primitive and definitive erythropoiesis. By ablating the expression of the endogenous GATA-1 gene, we are in a position to introduce a variety of constructs that harbor subtle modifications in flanking or protein-coding sequences. We can now study regulatory regions and functional domains of the protein in the context of a true erythroid environment, experiments that have not been possible heretofore. Although the assay involves the dramatic loss of red cell production, it should be possible to define important regulatory domains that can then be assayed using less stringent systems, such as cell-free extracts for in vitro transcription. The ideal situation would be analyses conducted in GATA-1- erythroid cells. However, these cells have been impossible to generate given the requirement of GATA-1 for Epo receptor expression and red cell viability (C. Simon and S. Orkin, unpublished observations). It may be possible to produce such cells by first expressing the Epo receptor under the influence of a constitutive promoter and then targeting the GATA-1 gene. If GATA-1- red cells were available, the analyses would involve the actual transcription of or chromatin structure surrounding the globin genes. Structure-function studies of the GATA-1 protein could be greatly simplified and a larger number of mutants studied. However, the ES cell system can be used as an alternative until targeted erythroleukemia cells become available. Other applications involve the introduction of other GATA-binding protein family members to determine whether they rescue the mutation. If they cannot, chimeric proteins can be tested to identify which amino acids distinguish the different family members. We feel that these experiments are vital to understanding the function of GATA-1 during erythroid ontogeny. How does GATA-1 regulate red cell genes like globin or the Epo receptor? Once we identify the functional domains of the GATA-binding proteins, we hope to learn what proteins GATA-1 binds to in the basic transcription machinery or in chromatin. Is GATA-1 necessary for globin gene switching? GATA-1 may be modified differently during development so that the locus control region can interact with different globin promoters. We may find that one region of the protein is required for embryonic expression and another for adult globin gene expression.

摘要

总之,我们构建了一个实验系统,使我们能够在基因水平上剖析GATA-1在红细胞发育中的功能。我们已经证实了GATA-1在原始红细胞生成和确定性红细胞生成过程中的本质作用。通过消除内源性GATA-1基因的表达,我们能够引入各种在侧翼或蛋白质编码序列中带有细微修饰的构建体。现在我们可以在真正的红细胞环境中研究该蛋白质的调控区域和功能结构域,而此前这些实验是无法进行的。尽管该实验涉及红细胞生成的显著减少,但应该能够确定重要的调控结构域,然后可以使用不太严格的系统进行检测,例如用于体外转录的无细胞提取物。理想的情况是在GATA-1缺陷的红细胞中进行分析。然而,鉴于GATA-1对促红细胞生成素受体表达和红细胞活力的需求,这些细胞一直无法生成(C. 西蒙和S. 奥金,未发表的观察结果)。有可能通过首先在组成型启动子的影响下表达促红细胞生成素受体,然后靶向GATA-1基因来产生这样的细胞。如果有GATA-1缺陷的红细胞,分析将涉及珠蛋白基因周围的实际转录或染色质结构。GATA-1蛋白的结构-功能研究可以大大简化,并且可以研究更多的突变体。然而,在获得靶向的红白血病细胞之前,可以将胚胎干细胞系统用作替代方法。其他应用包括引入其他GATA结合蛋白家族成员,以确定它们是否能挽救突变。如果不能,则可以测试嵌合蛋白,以确定哪些氨基酸区分不同的家族成员。我们认为这些实验对于理解GATA-1在红细胞个体发育过程中的功能至关重要。GATA-1是如何调控珠蛋白或促红细胞生成素受体等红细胞基因的?一旦我们确定了GATA结合蛋白的功能结构域,我们希望了解GATA-1在基本转录机制或染色质中与哪些蛋白质结合。GATA-1对于珠蛋白基因转换是否必要?GATA-1在发育过程中可能会有不同的修饰,以便基因座控制区域能够与不同的珠蛋白启动子相互作用。我们可能会发现该蛋白质的一个区域对于胚胎表达是必需的,而另一个区域对于成人珠蛋白基因表达是必需的。

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