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Activation of the Flt3 signal transduction cascade rescues and enhances type I interferon–producing and dendritic cell development

机译:Flt3信号转导级联反应的激活可拯救并增强I型干扰素产生和树突状细胞发育

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摘要

Flt3 ligand (Flt3L) is a nonredundant cytokine in type I interferon–producing cell (IPC) and dendritic cell (DC) development, and IPC and DC differentiation potential is confined to Flt3+ hematopoietic progenitor cells. Here, we show that overexpression of human Flt3 in Flt3− (Flt3−Lin−IL-7Rα−Thy1.1−c-Kit+) and Flt3+ (Flt3+Lin−IL-7Rα−Thy1.1−c-Kit+) hematopoietic progenitors rescues and enhances their IPC and DC differentiation potential, respectively. In defined hematopoietic cell populations, such as Flt3− megakaryocyte/erythrocyte-restricted progenitors (MEPs), enforced Flt3 signaling induces transcription of IPC, DC, and granulocyte/macrophage (GM) development–affiliated genes, including STAT3, PU.1, and G-/M-/GM-CSFR, and activates differentiation capacities to these lineages. Moreover, ectopic expression of Flt3 downstream transcription factors STAT3 or PU.1 in Flt3− MEPs evokes Flt3 receptor expression and instructs differentiation into IPCs, DCs, and myelomonocytic cells, whereas GATA-1 expression and consecutive megakaryocyte/erythrocyte development is suppressed. Based on these data, we propose a demand-regulated, cytokine-driven DC and IPC regeneration model, in which high Flt3L levels initiate a self-sustaining, Flt3-STAT3– and Flt3-PU.1–mediated IPC and DC differentiation program in Flt3+ hematopoietic progenitor cells.
机译:Flt3配体(Flt3L)是I型干扰素产生细胞(IPC)和树突状细胞(DC)发育中的非冗余细胞因子,IPC和DC分化潜能仅限于Flt3 +造血祖细胞。在这里,我们显示人类Flt3在Flt3--(Flt3-Lin-IL-7Rα-Thy1.1-c-Kit+)和Flt3 +(Flt3 +Lin-IL-7Rα-Thy1.1-c-Kit+)造血祖细胞中的过表达分别挽救并增强其IPC和DC分化潜力。在限定的造血细胞群体中,例如Flt3-巨核细胞/红细胞限制性祖细胞(MEPs),强制的Flt3信号传导诱导IPC,DC和粒细胞/巨噬细胞(GM)发育相关基因的转录,包括STAT3,PU.1和G- / M- / GM-CSFR,并激活这些谱系的分化能力。此外,Flt3-MEP中Flt3下游转录因子STAT3或PU.1的异位表达唤起Flt3受体表达并指示分化为IPC,DC和骨髓单核细胞,而GATA-1表达和连续的巨核/红细胞发育受到抑制。根据这些数据,我们提出了一种受需求调节的,受细胞因子驱动的DC和IPC再生模型,在该模型中,高水平的Flt3L启动了自我维持的Flt3-STAT3和Flt3-PU.1介导的IPC和DC分化程序Flt3 +造血祖细胞。

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