The role of the iron transporter ABCB7 in refractory anemia with ring sideroblasts

Jacqueline Boultwood1, Andrea Pellagatti, Maryam Nikpour

  • 1LRF Molecular Haematology Unit, Nuffield Department of Clinical Laboratory Sciences, John Radcliffe Hospital, Oxford, United Kingdom. jacqueline.boultwood@ndcls.ox.ac.uk

Plos One
|April 10, 2008
PubMed

Insights

Refractory Anemia with Ring Sideroblasts (RARS) is linked to lower expression of the ABCB7 gene. This finding connects inherited and acquired sideroblastic anemias, suggesting ABCB7

Area of Science:

  • Hematology
  • Molecular Biology
  • Genetics

Background:

  • Refractory Anemia with Ring Sideroblasts (RARS) is a myelodysplastic syndrome (MDS) marked by mitochondrial iron overload in erythroblasts.
  • The exact cause of RARS and its iron deposition pattern are unknown.
  • X-linked sideroblastic anemia with ataxia (XLSA/A), caused by ABCB7 gene mutations, offers a potential model for RARS.

Purpose of the Study:

  • To investigate the role of the ABCB7 gene in the pathogenesis of RARS.
  • To explore the relationship between ABCB7 gene expression and RARS characteristics.

Main Methods:

  • DNA sequencing, methylation, and gene expression studies were performed on primary CD34(+) cells and cultured erythroblasts.
  • ABCB7 gene expression levels were analyzed in 122 MDS patients (including RARS) and 16 healthy controls.

Main Results:

  • The ABCB7 gene sequence was normal in RARS patients.
  • Significantly lower ABCB7 gene expression was observed in RARS patients compared to other MDS subtypes and controls.
  • A strong inverse correlation was found between bone marrow ring sideroblast percentage and ABCB7 gene expression.

Conclusions:

  • RARS is characterized by reduced ABCB7 gene expression.
  • These findings establish a link between inherited and acquired sideroblastic anemias.
  • ABCB7 is identified as a strong candidate gene for RARS.

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