Institute for Medical Engineering and Science, Massachusetts Institute of Technology, Cambridge, United States.
Division of Hematology/Oncology, Boston Children's Hospital, Harvard Medical School, Boston, United States.
Elife. 2019 Apr 29;8:e46976. doi: 10.7554/eLife.46976.
Iron and heme play central roles in the production of red blood cells, but the underlying mechanisms remain incompletely understood. Heme-regulated eIF2α kinase (HRI) controls translation by phosphorylating eIF2α. Here, we investigate the global impact of iron, heme, and HRI on protein translation in vivo in murine primary erythroblasts using ribosome profiling. We validate the known role of HRI-mediated translational stimulation of integratedstressresponse mRNAs during iron deficiency in vivo. Moreover, we find that the translation of mRNAs encoding cytosolic and mitochondrial ribosomal proteins is substantially repressed by HRI during iron deficiency, causing a decrease in cytosolic and mitochondrial protein synthesis. The absence of HRI during iron deficiency elicits a prominent cytoplasmic unfolded protein response and impairs mitochondrial respiration. Importantly, ATF4 target genes are activated during iron deficiency to maintain mitochondrial function and to enable erythroid differentiation. We further identify GRB10 as a previously unappreciated regulator of terminal erythropoiesis.
铁和血红素在红细胞的生成中起着核心作用,但其中的底层机制仍不完全清楚。血红素调节的真核起始因子 2α 激酶 (HRI) 通过磷酸化 eIF2α 来控制翻译。在这里,我们使用核糖体分析在体内研究铁、血红素和 HRI 对鼠原代红细胞中蛋白质翻译的全局影响。我们验证了 HRI 在体内缺铁时对整合应激反应 mRNA 进行翻译刺激的已知作用。此外,我们发现,在缺铁时,HRI 会大量抑制编码细胞质和线粒体核糖体蛋白的 mRNA 的翻译,导致细胞质和线粒体蛋白质合成减少。在缺铁时缺乏 HRI 会引发明显的细胞质未折叠蛋白反应,并损害线粒体呼吸。重要的是,在缺铁时 ATF4 靶基因被激活,以维持线粒体功能并促进红细胞分化。我们进一步鉴定出 GRB10 是红细胞生成末期的一个以前未被认识到的调节剂。