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本文引用的文献

1
Novel roles for KLF1 in erythropoiesis revealed by mRNA-seq.mRNA-seq 揭示了 KLF1 在红细胞生成中的新作用。
Genome Res. 2012 Dec;22(12):2385-98. doi: 10.1101/gr.135707.111. Epub 2012 Jul 26.
2
Controlling long-range genomic interactions at a native locus by targeted tethering of a looping factor.通过靶向固定环化因子来控制天然基因座上的长距离基因组相互作用。
Cell. 2012 Jun 8;149(6):1233-44. doi: 10.1016/j.cell.2012.03.051.
3
A core erythroid transcriptional network is repressed by a master regulator of myelo-lymphoid differentiation.核心红系转录网络受髓系-淋巴系分化的主调控因子抑制。
Proc Natl Acad Sci U S A. 2012 Mar 6;109(10):3832-7. doi: 10.1073/pnas.1121019109. Epub 2012 Feb 22.
4
Dynamic long-range chromatin interactions control Myb proto-oncogene transcription during erythroid development.动态长程染色质相互作用控制着红细胞发育过程中 Myb 原癌基因的转录。
EMBO J. 2012 Feb 15;31(4):986-99. doi: 10.1038/emboj.2011.450. Epub 2011 Dec 13.
5
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
Genome-wide ChIP-Seq reveals a dramatic shift in the binding of the transcription factor erythroid Kruppel-like factor during erythrocyte differentiation.全基因组 ChIP-Seq 揭示了转录因子红细胞 Kruppel 样因子在红细胞分化过程中结合的显著变化。
Blood. 2011 Oct 27;118(17):e139-48. doi: 10.1182/blood-2011-05-355107. Epub 2011 Sep 6.
7
A large gene network in immature erythroid cells is controlled by the myeloid and B cell transcriptional regulator PU.1.未成熟红细胞中的一个大型基因网络受髓系和 B 细胞转录因子 PU.1 控制。
PLoS Genet. 2011 Jun;7(6):e1001392. doi: 10.1371/journal.pgen.1001392. Epub 2011 Jun 9.
8
The multifunctional role of EKLF/KLF1 during erythropoiesis.EKLF/KLF1 在红细胞生成过程中的多功能作用。
Blood. 2011 Aug 25;118(8):2044-54. doi: 10.1182/blood-2011-03-331371. Epub 2011 May 25.
9
Formation of mammalian erythrocytes: chromatin condensation and enucleation.哺乳动物红细胞的形成:染色质浓缩和去核。
Trends Cell Biol. 2011 Jul;21(7):409-15. doi: 10.1016/j.tcb.2011.04.003. Epub 2011 May 17.
10
Identification of distal cis-regulatory elements at mouse mitoferrin loci using zebrafish transgenesis.利用斑马鱼转基因技术鉴定小鼠线粒体铁传递蛋白基因座的远端顺式调控元件。
Mol Cell Biol. 2011 Apr;31(7):1344-56. doi: 10.1128/MCB.01010-10. Epub 2011 Jan 19.

Ldb1 核转录复合物作为红细胞基因激活的主要介质。

Ldb1-nucleated transcription complexes function as primary mediators of global erythroid gene activation.

机构信息

Section on Cellular and Developmental Biology, Eunice Kennedy Shriver National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, MD 20892, USA.

出版信息

Blood. 2013 May 30;121(22):4575-85. doi: 10.1182/blood-2013-01-479451. Epub 2013 Apr 22.

DOI:10.1182/blood-2013-01-479451
PMID:23610375
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3668490/
Abstract

Erythropoiesis is dependent on the lineage-specific transcription factors Gata1, Tal1, and Klf1. Several erythroid genes have been shown to require all 3 factors for their expression, suggesting that they function synergistically; however, there is little direct evidence for widespread cooperation. Gata1 and Tal1 can assemble within higher-order protein complexes (Ldb1 complexes) that include the adapter molecules Lmo2 and Ldb1. Ldb1 proteins are capable of coassociation, and long-range Ldb1-mediated oligomerization of enhancer- and promoter-bound Ldb1 complexes has been shown to be required for β-globin gene expression. In this study, we generated a genomewide map of Ldb1 complex binding sites that revealed widespread binding at erythroid genes and at known erythroid enhancer elements. Ldb1 complex binding sites frequently colocalized with Klf1 binding sites and with consensus binding motifs for other erythroid transcription factors. Transcriptomic analysis demonstrated a strong correlation between Ldb1 complex binding and Ldb1 dependency for gene expression and identified a large cohort of genes coregulated by Ldb1 complexes and Klf1. Together, these results provide a foundation for defining the mechanism and scope of Ldb1 complex activity during erythropoiesis.

摘要

红细胞生成依赖于谱系特异性转录因子 Gata1、Tal1 和 Klf1。已经证明,一些红细胞基因的表达需要这 3 个因子,这表明它们具有协同作用;然而,很少有直接证据表明广泛的合作。Gata1 和 Tal1 可以在包括适配器分子 Lmo2 和 Ldb1 的更高阶蛋白复合物(Ldb1 复合物)中组装。Ldb1 蛋白能够共同关联,并且已经表明长距离 Ldb1 介导的增强子和启动子结合的 Ldb1 复合物的寡聚化对于 β-珠蛋白基因的表达是必需的。在这项研究中,我们生成了 Ldb1 复合物结合位点的全基因组图谱,揭示了在红细胞基因和已知的红细胞增强子元件上广泛的结合。Ldb1 复合物结合位点经常与 Klf1 结合位点和其他红细胞转录因子的共识结合基序共定位。转录组分析表明,Ldb1 复合物结合与基因表达的 Ldb1 依赖性之间存在很强的相关性,并确定了一大群由 Ldb1 复合物和 Klf1 共同调控的基因。总之,这些结果为定义 Ldb1 复合物在红细胞生成过程中的作用机制和范围提供了基础。