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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.
Abstract:
The congenital sideroblastic anemias (CSAs) can be caused by primary defects in mitochondrial iron-sulfur (Fe-S) cluster biogenesis. HSCB (heat shock cognate B), which encodes a mitochondrial cochaperone, also known as HSC20 (heat shock cognate protein 20), is the partner of mitochondrial heat shock protein A9 (HSPA9). Together with glutaredoxin 5 (GLRX5), HSCB and HSPA9 facilitate the transfer of nascent 2-iron, 2-sulfur clusters to recipient mitochondrial proteins. Mutations in both HSPA9 and GLRX5 have previously been associated with CSA. Therefore, we hypothesized that mutations in HSCB could also cause CSA. We screened patients with genetically undefined CSA and identified a frameshift mutation and a rare promoter variant in HSCB in a female patient with non-syndromic CSA. We found that HSCB expression was decreased in patient-derived fibroblasts and K562 erythroleukemia cells engineered to have the patient-specific promoter variant. Furthermore, gene knockdown and deletion experiments performed in K562 cells, zebrafish, and mice demonstrate that loss of HSCB results in impaired Fe-S cluster biogenesis, a defect in RBC hemoglobinization, and the development of siderocytes and more broadly perturbs hematopoiesis in vivo. These results further affirm the involvement of Fe-S cluster biogenesis in erythropoiesis and hematopoiesis and define HSCB as a CSA gene.
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