Microcytic anemia and hepatic iron overload in a child with compound heterozygous mutations in DMT1 (SCL11A2)
Achille Iolascon1, Maria d'Apolito, Veronica Servedio
1Genetica Medica, Dipartimento di Biochimica e Biotecnologie Mediche, Università Federico II, Naples, Italy. iolascon@dbbm.unina.it
Abstract:
Divalent metal transporter 1 (DMT1) mediates apical iron uptake in duodenal enterocytes and iron transfer from the transferrin receptor endosomal cycle into the cytosol in erythroid cells. Both mk mice and Belgrade rats, which carry an identical DMT1 mutation, exhibit severe microcytic anemia at birth and defective intestinal iron use and erythroid iron use. We report the hematologic phenotype of a child, compound heterozygote for 2 DMT1 mutations, who was affected by severe anemia since birth and showed hepatic iron overload. The novel mutations were a 3-bp deletion in intron 4 (c.310-3_5del CTT) resulting in a splicing abnormality and a C>T transition at nucleotide 1246(p. R416C). A striking reduction of DMT1 protein in peripheral blood mononuclear cells was demonstrated by Western blot analysis. The proband required blood transfusions until erythropoietin treatment allowed transfusion independence when hemoglobin levels between 75 and 95 g/L (7.5 and 9.5 g/dL) were achieved. Hematologic data of this patient at birth and in the first years of life strengthen the essential role of DMT1 in erythropoiesis. The early onset of iron overload indicates that, as in animal models, DMT1 is dispensable for liver iron uptake, whereas its deficiency in the gut is likely bypassed by the up-regulation of other pathways of iron use.
Insights
Divalent metal transporter 1 (DMT1) mutations cause severe anemia and iron overload. This study details a child's phenotype, highlighting DMT1's crucial role in red blood cell formation and iron metabolism.
Area of Science:
- Genetics and Molecular Biology
- Hematology
- Human Physiology
Background:
- Divalent metal transporter 1 (DMT1) is critical for iron absorption in the gut and iron utilization in erythroid cells.
- Mutations in DMT1 lead to microcytic anemia and impaired iron metabolism, as observed in animal models.
Observation:
- A child with compound heterozygous DMT1 mutations presented with severe anemia from birth and hepatic iron overload.
- Novel mutations identified include a splicing abnormality (c.310-3_5del CTT) and a missense mutation (p.R416C).
- Western blot analysis confirmed a significant reduction in DMT1 protein levels in the patient's peripheral blood mononuclear cells.
Findings:
- The patient required transfusions until erythropoietin therapy enabled transfusion independence with improved hemoglobin levels.
- Hematologic data underscore DMT1's essential function in erythropoiesis.
- Early hepatic iron overload suggests DMT1 is not essential for liver iron uptake, unlike its critical role in intestinal iron absorption.
Implications:
- This case reinforces the vital role of DMT1 in erythropoiesis and iron homeostasis in humans.
- The findings suggest compensatory mechanisms for intestinal iron uptake may exist despite DMT1 deficiency.
- Understanding DMT1's function provides insights into treating iron-related anemias and disorders.
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