Wingert Rebecca A, Galloway Jenna L, Barut Bruce, Foott Helen, Fraenkel Paula, Axe Jennifer L, Weber Gerhard J, Dooley Kimberly, Davidson Alan J, Schmid Bettina, Paw Barry H, Shaw George C, Kingsley Paul, Palis James, Schubert Heidi, Chen Opal, Kaplan Jerry, Zon Leonard I
Stem Cell Program and Division Hematology/Oncology Children's Hospital and Dana-Farber Cancer Institute, Howard Hughes Medical Institute, Harvard Medical School, Boston, Massachusetts 02115, USA.
Nature. 2005 Aug 18;436(7053):1035-39. doi: 10.1038/nature03887.
Iron is required to produce haem and iron-sulphur (Fe-S) clusters, processes thought to occur independently. Here we show that the hypochromic anaemia in shiraz (sir) zebrafish mutants is caused by deficiency of glutaredoxin 5 (grx5), a gene required in yeast for Fe-S cluster assembly. We found that grx5 was expressed in erythroid cells of zebrafish and mice. Zebrafish grx5 rescued the assembly of grx5 yeast Fe-S, showing that the biochemical function of grx5 is evolutionarily conserved. In contrast to yeast, vertebrates use iron regulatory protein 1 (IRP1) to sense intracellular iron and regulate mRNA stability or the translation of iron metabolism genes. We found that loss of Fe-S cluster assembly in sir animals activated IRP1 and blocked haem biosynthesis catalysed by aminolaevulinate synthase 2 (ALAS2). Overexpression of ALAS2 RNA without the 5' iron response element that binds IRP1 rescued sir embryos, whereas overexpression of ALAS2 including the iron response element did not. Further, antisense knockdown of IRP1 restored sir embryo haemoglobin synthesis. These findings uncover a connection between haem biosynthesis and Fe-S clusters, indicating that haemoglobin production in the differentiating red cell is regulated through Fe-S cluster assembly.
铁是生成血红素和铁硫(Fe-S)簇所必需的,这两个过程被认为是独立发生的。在这里,我们表明设拉子(sir)斑马鱼突变体中的低色素性贫血是由谷氧还蛋白5(grx5)缺乏引起的,grx5是酵母中Fe-S簇组装所需的基因。我们发现grx5在斑马鱼和小鼠的红细胞中表达。斑马鱼grx5挽救了grx5酵母Fe-S的组装,表明grx5的生化功能在进化上是保守的。与酵母不同,脊椎动物使用铁调节蛋白1(IRP1)来感知细胞内铁并调节mRNA稳定性或铁代谢基因的翻译。我们发现,sir动物中Fe-S簇组装的缺失激活了IRP1,并阻断了由氨基乙酰丙酸合酶2(ALAS2)催化的血红素生物合成。不含与IRP1结合的5'铁反应元件的ALAS2 RNA的过表达挽救了sir胚胎,而包含铁反应元件的ALAS2的过表达则没有。此外,IRP1的反义敲低恢复了sir胚胎的血红蛋白合成。这些发现揭示了血红素生物合成与Fe-S簇之间的联系,表明分化红细胞中的血红蛋白产生是通过Fe-S簇组装来调节的。