首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Ferritin Heavy Subunit Silencing Blocks the Erythroid Commitment of K562 Cells via miR-150 up-Regulation and GATA-1 Repression
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Ferritin Heavy Subunit Silencing Blocks the Erythroid Commitment of K562 Cells via miR-150 up-Regulation and GATA-1 Repression

机译:铁蛋白重亚基沉默通过miR-150上调和GATA-1阻遏阻滞K562细胞的类红血球承诺。

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摘要

Erythroid differentiation is a complex and multistep process during which an adequate supply of iron for hemoglobinization is required. The role of ferritin heavy subunit, in this process, has been mainly attributed to its capacity to maintain iron in a non-toxic form. We propose a new role for ferritin heavy subunit (FHC) in controlling the erythroid commitment of K562 erythro-myeloid cells. FHC knockdown induces a change in the balance of GATA transcription factors and significantly reduces the expression of a repertoire of erythroid-specific genes, including α- and γ-globins, as well as CD71 and CD235a surface markers, in the absence of differentiation stimuli. These molecular changes are also reflected at the morphological level. Moreover, the ability of FHC-silenced K562 cells to respond to the erythroid-specific inducer hemin is almost completely abolished. Interestingly, we found that this new role for FHC is largely mediated via regulation of miR-150, one of the main microRNA implicated in the cell-fate choice of common erythroid/megakaryocytic progenitors. These findings shed further insight into the biological properties of FHCand delineate a role in erythroid differentiation where this protein does not act as a mere iron metabolism-related factor but also as a critical regulator of the expression of genes of central relevance for erythropoiesis.
机译:红系分化是一个复杂且多步骤的过程,在此过程中需要充足的铁供血红蛋白化。在此过程中,铁蛋白重亚基的作用主要归因于其以无毒形式保持铁的能力。我们建议铁蛋白重亚基(FHC)在控制K562红系髓样细胞的红系承诺中的新作用。在没有分化刺激的情况下,FHC抑制可诱导GATA转录因子平衡的变化,并显着降低类红细胞特异性基因(包括α和γ珠蛋白以及CD71和CD235a表面标记)的表达。这些分子变化也反映在形态学水平上。此外,FHC沉默的K562细胞对红系特异诱导剂血红素的反应能力几乎完全消失了。有趣的是,我们发现FHC的这一新作用很大程度上是通过调节miR-150介导的,miR-150是与常见红系/巨核细胞祖细胞命运相关的主要microRNA之一。这些发现使人们对FHC的生物学特性有了更深入的了解,并描述了在红系分化中的作用,其中该蛋白不仅起铁代谢相关因子的作用,而且还是促红细胞生成相关基因表达的关键调节剂。

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