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Csk结合蛋白通过调节Lyn酪氨酸激酶活性来控制红细胞发育。

Csk-binding protein controls red blood cell development via regulation of Lyn tyrosine kinase activity.

作者信息

Plani-Lam Janice H C, Slavova-Azmanova Neli S, Kucera Nicole, Louw Alison, Satiaputra Jiulia, Singer Peter, Lam Kong-Peng, Hibbs Margaret L, Ingley Evan

机构信息

Cell Signalling Group, Laboratory for Cancer Medicine, Harry Perkins Institute of Medical Research and Centre for Medical Research, The University of Western Australia, Perth, WA, Australia.

Laboratory of Immunology, Bioprocessing Technology Institute, Agency for Science, Technology and Research, Singapore, Singapore.

出版信息

Exp Hematol. 2017 Feb;46:70-82.e10. doi: 10.1016/j.exphem.2016.10.001. Epub 2016 Oct 15.

Abstract

Erythropoiesis is controlled principally through erythropoietin (Epo) receptor signaling, which involves Janus kinase 2 (JAK2) and Lyn tyrosine kinase, both of which are important for regulating red blood cell (RBC) development. Negative regulation of Lyn involves C-Src kinase (Csk)-mediated phosphorylation of its C-terminal tyrosine, which is facilitated by the transmembrane adaptor Csk-binding protein (Cbp). Although Cbp has significant functions in controlling Lyn levels and activity in erythroid cells in vitro, its importance to primary erythroid cell development and signaling has remained unclear. To address this, we assessed the consequence of loss of Cbp on the erythroid compartment in vivo and whether Epo-responsive cells isolated from Cbp-knockout mice exhibited altered signaling. Our data show that male Cbp mice display a modest but significant alteration to late erythroid development in bone marrow with evidence of increased erythrocytes in the spleen, whereas female Cbp mice exhibit a moderate elevation in early erythroid progenitors (not seen in male mice) that does not influence the later steps in RBC development. In isolated primary erythroid cells and cell lines generated from Cbp mice, survival signaling through Lyn/Akt/FoxO3 was elevated, resulting in sustained viability during differentiation. The high Akt activity disrupted GAB2/SHP-2 feedback inhibition of Lyn; however, the elevated Lyn activity also increased inhibitory signaling via SHP-1 to restrict the Erk1/2 pathway. Interestingly, whereas loss of Cbp led to mild changes to late RBC development in male mice, this was not apparent in female Cbp mice, possibly due to their elevated estrogen, which is known to facilitate early progenitor self-renewal.

摘要

红细胞生成主要通过促红细胞生成素(Epo)受体信号传导来控制,该信号传导涉及Janus激酶2(JAK2)和Lyn酪氨酸激酶,这两者对于调节红细胞(RBC)发育都很重要。Lyn的负调控涉及C-Src激酶(Csk)介导的其C末端酪氨酸的磷酸化,这由跨膜衔接蛋白Csk结合蛋白(Cbp)促进。尽管Cbp在体外控制红系细胞中Lyn的水平和活性方面具有重要功能,但其对原代红系细胞发育和信号传导的重要性仍不清楚。为了解决这个问题,我们评估了Cbp缺失对体内红系区室的影响,以及从Cbp基因敲除小鼠中分离出的Epo反应性细胞是否表现出信号传导改变。我们的数据表明,雄性Cbp小鼠骨髓中晚期红系发育有适度但显著的改变,脾脏中有红细胞增多的证据,而雌性Cbp小鼠早期红系祖细胞有中度升高(雄性小鼠未出现),这并不影响RBC发育的后期步骤。在从Cbp小鼠产生的分离的原代红系细胞和细胞系中,通过Lyn/Akt/FoxO3的存活信号传导升高,导致分化过程中持续的活力。高Akt活性破坏了GAB2/SHP-2对Lyn的反馈抑制;然而,升高的Lyn活性也通过SHP-1增加抑制性信号传导以限制Erk1/2途径。有趣的是,虽然Cbp缺失导致雄性小鼠晚期RBC发育有轻微变化,但在雌性Cbp小鼠中并不明显,这可能是由于它们雌激素升高,已知雌激素有助于早期祖细胞自我更新。

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