Mutations in the iron-sulfur cluster biogenesis protein HSCB cause congenital sideroblastic anemia

Andrew Crispin1, Chaoshe Guo1, Caiyong Chen2

  • 1Department of Pathology, Boston Children's Hospital, Boston, Massachusetts, USA.

Insights

Mutations in HSCB (heat shock cognate B) cause congenital sideroblastic anemias (CSAs) by disrupting mitochondrial iron-sulfur cluster biogenesis, impacting red blood cell formation.

Area of Science:

  • Molecular Biology
  • Genetics
  • Hematology

Background:

  • Congenital sideroblastic anemias (CSAs) are often linked to defects in mitochondrial iron-sulfur (Fe-S) cluster biogenesis.
  • HSCB (heat shock cognate B), also known as HSC20, is a mitochondrial cochaperone crucial for Fe-S cluster transfer, partnering with HSPA9 and GLRX5.

Observation:

  • Mutations in HSPA9 and GLRX5 are known causes of CSA.
  • This study investigated HSCB as a potential causative gene for genetically undefined CSAs.
  • A patient with non-syndromic CSA presented with a frameshift mutation and a rare promoter variant in HSCB.

Findings:

  • HSCB expression was reduced in patient-derived cells with the identified promoter variant.
  • Gene knockdown and deletion of HSCB in cellular and animal models impaired Fe-S cluster biogenesis.
  • Loss of HSCB led to defective red blood cell (RBC) hemoglobinization, siderocyte formation, and broader hematopoietic perturbation.

Implications:

  • These findings establish HSCB as a novel gene associated with congenital sideroblastic anemias.
  • The study reinforces the critical role of mitochondrial Fe-S cluster biogenesis in erythropoiesis and overall hematopoiesis.
  • Understanding HSCB's function provides new insights into the molecular mechanisms underlying rare anemias.

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