Generation and Molecular Characterization of Human Ring Sideroblasts: a Key Role of Ferrous Iron in Terminal Erythroid Differentiation and Ring Sideroblast Formation

Mol Cell Biol. 2019 Mar 19;39(7):e00387-18. doi: 10.1128/MCB.00387-18. Print 2019 Apr 1.

Abstract

Ring sideroblasts are a hallmark of sideroblastic anemia, although little is known about their characteristics. Here, we first generated mutant mice by disrupting the GATA-1 binding motif at the intron 1 enhancer of the ALAS2 gene, a gene responsible for X-linked sideroblastic anemia (XLSA). Although heterozygous female mice showed an anemic phenotype, ring sideroblasts were not observed in their bone marrow. We next established human induced pluripotent stem cell-derived proerythroblast clones harboring the same ALAS2 gene mutation. Through coculture with sodium ferrous citrate, mutant clones differentiated into mature erythroblasts and became ring sideroblasts with upregulation of metal transporters (MFRN1, ZIP8, and DMT1), suggesting a key role for ferrous iron in erythroid differentiation. Interestingly, holo-transferrin (holo-Tf) did not induce erythroid differentiation as well as ring sideroblast formation, and mutant cells underwent apoptosis. Despite massive iron granule content, ring sideroblasts were less apoptotic than holo-Tf-treated undifferentiated cells. Microarray analysis revealed upregulation of antiapoptotic genes in ring sideroblasts, a profile partly shared with erythroblasts from a patient with XLSA. These results suggest that ring sideroblasts exert a reaction to avoid cell death by activating antiapoptotic programs. Our model may become an important tool to clarify the pathophysiology of sideroblastic anemia.

Keywords: 5-aminolevulinic acid synthase 2; X-linked sideroblastic anemia; erythroid cells; heme; iron.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • 5-Aminolevulinate Synthetase / genetics
  • 5-Aminolevulinate Synthetase / metabolism
  • Anemia, Sideroblastic / metabolism*
  • Animals
  • Bone Marrow / metabolism
  • Cell Differentiation / physiology
  • Erythroblasts / metabolism*
  • Erythroblasts / physiology
  • Erythroid Precursor Cells / metabolism
  • Female
  • GATA1 Transcription Factor / metabolism
  • Genetic Diseases, X-Linked / metabolism*
  • Humans
  • Induced Pluripotent Stem Cells / metabolism
  • Iron / metabolism
  • Male
  • Membrane Transport Proteins / metabolism
  • Mice

Substances

  • GATA1 Transcription Factor
  • Membrane Transport Proteins
  • Iron
  • 5-Aminolevulinate Synthetase
  • ALAS2 protein, human
  • ALAS2 protein, mouse

Supplementary concepts

  • X-linked sideroblastic anemia