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通过特定位点整合染色质调控因子建立造血基因网络。

Establishing a hematopoietic genetic network through locus-specific integration of chromatin regulators.

机构信息

Department of Cell and Regenerative Biology, Wisconsin Institutes for Medical Research, Carbone Cancer Center, University of Wisconsin-Madison Blood Research Program, University of Wisconsin School of Medicine and Public Health, Madison, WI 53705, USA.

出版信息

Proc Natl Acad Sci U S A. 2013 Sep 3;110(36):E3398-407. doi: 10.1073/pnas.1302771110. Epub 2013 Aug 19.

Abstract

The establishment and maintenance of cell type-specific transcriptional programs require an ensemble of broadly expressed chromatin remodeling and modifying enzymes. Many questions remain unanswered regarding the contributions of these enzymes to specialized genetic networks that control critical processes, such as lineage commitment and cellular differentiation. We have been addressing this problem in the context of erythrocyte development driven by the transcription factor GATA-1 and its coregulator Friend of GATA-1 (FOG-1). As certain GATA-1 target genes have little to no FOG-1 requirement for expression, presumably additional coregulators can mediate GATA-1 function. Using a genetic complementation assay and RNA interference in GATA-1-null cells, we demonstrate a vital link between GATA-1 and the histone H4 lysine 20 methyltransferase PR-Set7/SetD8 (SetD8). GATA-1 selectively induced H4 monomethylated lysine 20 at repressed, but not activated, loci, and endogenous SetD8 mediated GATA-1-dependent repression of a cohort of its target genes. GATA-1 used different combinations of SetD8, FOG-1, and the FOG-1-interacting nucleosome remodeling and deacetylase complex component Mi2β to repress distinct target genes. Implicating SetD8 as a context-dependent GATA-1 corepressor expands the repertoire of coregulators mediating establishment/maintenance of the erythroid cell genetic network, and provides a biological framework for dissecting the cell type-specific functions of this important coregulator. We propose a coregulator matrix model in which distinct combinations of chromatin regulators are required at different GATA-1 target genes, and the unique attributes of the target loci mandate these combinations.

摘要

细胞类型特异性转录程序的建立和维持需要一组广泛表达的染色质重塑和修饰酶。这些酶对控制关键过程(如谱系决定和细胞分化)的专门遗传网络的贡献仍有许多问题尚未得到解答。我们一直在研究转录因子 GATA-1 及其共激活因子 Friend of GATA-1(FOG-1)驱动的红细胞发育背景下的这个问题。由于某些 GATA-1 靶基因的表达几乎不需要 FOG-1,推测其他共激活因子可以介导 GATA-1 功能。我们使用遗传互补测定和 GATA-1 缺失细胞中的 RNA 干扰,证明了 GATA-1 和组蛋白 H4 赖氨酸 20 甲基转移酶 PR-Set7/SetD8(SetD8)之间存在至关重要的联系。GATA-1 选择性诱导受抑制而非激活的基因座上的 H4 单甲基化赖氨酸 20,内源性 SetD8 介导了 GATA-1 依赖性抑制其靶基因群。GATA-1 使用不同的 SetD8、FOG-1 和 FOG-1 相互作用的核小体重塑和去乙酰化酶复合物成分 Mi2β 组合来抑制不同的靶基因。将 SetD8 牵连为依赖上下文的 GATA-1 共抑制因子扩展了介导红细胞细胞遗传网络建立/维持的共激活因子谱,并为剖析该重要共激活因子的细胞类型特异性功能提供了生物学框架。我们提出了一个共激活因子矩阵模型,其中不同的染色质调节剂组合在不同的 GATA-1 靶基因中是必需的,而靶基因座的独特属性要求这些组合。

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本文引用的文献

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Ontogeny of erythroid gene expression.红细胞基因表达的个体发生。
Blood. 2013 Feb 7;121(6):e5-e13. doi: 10.1182/blood-2012-04-422394. Epub 2012 Dec 12.
2
The switch from fetal to adult hemoglobin.从胎儿血红蛋白向成人血红蛋白的转变。
Cold Spring Harb Perspect Med. 2013 Jan 1;3(1):a011643. doi: 10.1101/cshperspect.a011643.
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Autophagy driven by a master regulator of hematopoiesis.由造血主调控因子驱动的自噬。
Mol Cell Biol. 2012 Jan;32(1):226-39. doi: 10.1128/MCB.06166-11. Epub 2011 Oct 24.
6
Erythroblast enucleation.红细胞去核。
Stem Cells Int. 2011;2011:139851. doi: 10.4061/2011/139851. Epub 2011 Oct 5.
8
9
Relocalizing genetic loci into specific subnuclear neighborhoods.将遗传基因座重新定位到特定的亚核区室。
J Biol Chem. 2011 May 27;286(21):18834-44. doi: 10.1074/jbc.M111.221481. Epub 2011 Mar 11.

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