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MYB controls erythroid versus megakaryocyte lineage fate decision through the miR-486-3p-mediated downregulation of MAF

机译:MYB通过miR-486-3p介导的MAF下调来控制红系和巨核细胞谱系的命运决定

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The transcription factor MYB has a key role in hematopoietic progenitor cells (HPCs) lineage choice, by enhancing erythropoiesis at the expense of megakaryopoiesis. We previously demonstrated that MYB controls erythroid versus megakaryocyte lineage decision by transactivating KLF1 and LMO2 expression. To further unravel the molecular mechanisms through which MYB affects lineage fate decision, we performed the integrative analysis of miRNA and mRNA changes in MYB-silenced human primary CD34+ HPCs. Among the miRNAs with the highest number of predicted targets, we focused our studies on hsa-miR-486-3p by demonstrating that MYB controls miR-486-3p expression through the transactivation of its host gene, ankyrin-1 (ANK1) and that miR-486-3p affects HPCs commitment. Indeed, overexpression and knockdown experiments demonstrated that miR-486-3p supports the erythropoiesis while restraining the megakaryopoiesis. Of note, miR-486-3p also favors granulocyte differentiation while repressing the macrophage differentiation. To shed some light on the molecular mechanisms through which miR-486-3p affects HPCs lineage commitment, we profiled the gene expression changes upon miR-486-3p overexpression in CD34+ cells. Among the genes downregulated in miR-486-3p-overexpressing HPCs and computationally predicted to be miR-486-3p targets, we identified MAF as a miR-486-3p target by 3'UTR luciferase reporter assay. Noteworthy, MAF overexpression was able to partially reverse the effects of miR-486-3p overexpression on erythroid versus megakaryocyte lineage choice. Moreover, the MYB/MAF co-silencing constrained the skewing of erythroid versus megakaryocyte lineage commitment in MYB-silenced CD34+ cells, by restraining the expansion of megakaryocyte lineage while partially rescuing the impairment of erythropoiesis. Therefore, our data collectively demonstrate that MYB favors erythropoiesis and restrains megakaryopoiesis through the transactivation of miR-4863p expression and the subsequent downregulation of MAF. As a whole, our study uncovers the MYB/miR-486-3p/MAF axis as a new mechanism underlying the MYB-driven control of erythroid versus megakaryocyte lineage fate decision.
机译:转录因子MYB通过增强红细胞生成能力而以巨核细胞生成为代价,在造血祖细胞(HPC)谱系选择中起关键作用。我们先前证明,MYB通过反激活KLF1和LMO2表达来控制红系和巨核细胞谱系的决定。为了进一步阐明MYB通过其影响谱系命运决定的分子机制,我们对MYB沉默的人类原代CD34 + HPC中的miRNA和mRNA变化进行了综合分析。在预测靶标数量最多的miRNA中,我们通过证明MYB通过其宿主基因锚蛋白1(ANK1)的反式激活来控制miR-486-3p的表达,从而将研究重点放在了hsa-miR-486-3p上。 miR-486-3p影响HPC的承诺。实际上,过度表达和敲除实验表明miR-486-3p支持红细胞生成,同时抑制巨核细胞生成。值得注意的是,miR-486-3p在抑制巨噬细胞分化的同时也有利于粒细胞分化。为了阐明miR-486-3p影响HPC谱系承诺的分子机制,我们分析了miR-486-3p在CD34 +细胞中过表达后基因表达的变化。在过表达miR-486-3p的HPC中下调的基因中,并通过计算预测为miR-486-3p靶标,我们通过3'UTR荧光素酶报告基因分析将MAF鉴定为miR-486-3p靶标。值得注意的是,MAF过表达能够部分逆转miR-486-3p过表达对红系和巨核细胞谱系选择的影响。此外,MYB / MAF共同沉默通过抑制巨核细胞谱系的扩增,同时部分挽救了红细胞生成障碍,从而限制了MYB沉默的CD34 +细胞中红系与巨核细胞谱系的偏向。因此,我们的数据共同证明,MYB通过反式激活miR-4863p表达并随后下调MAF来促进红细胞生成并抑制巨核细胞生成。总体而言,我们的研究发现MYB / miR-486-3p / MAF轴是MYB驱动的控制类红血球与巨核细胞谱系命运决定的新机制。

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