Mutations in HFE2 cause iron overload in chromosome 1q-linked juvenile hemochromatosis

George Papanikolaou1, Mark E Samuels, Erwin H Ludwig

  • 1First Department of Internal Medicine, National and Kapodistrian University of Athens, School of Medicine, Laikon General Hospital, Athens 11527, Greece.

Nature Genetics
|December 3, 2003
PubMed

Insights

Juvenile hemochromatosis, an iron overload disorder, is linked to a new gene, HFE2, crucial for iron metabolism. Mutations in HFE2, encoding hemojuvelin, are common in affected individuals and impact hepcidin regulation.

Area of Science:

  • Genetics
  • Molecular Biology
  • Endocrinology

Background:

  • Juvenile hemochromatosis is an early-onset autosomal recessive iron overload disorder.
  • It causes cardiomyopathy, diabetes, and hypogonadism, presenting in teens and early twenties.
  • The disorder was previously linked to chromosome 1q, a region with an incomplete genome assembly.

Purpose of the Study:

  • To identify the gene responsible for juvenile hemochromatosis.
  • To understand the role of this gene in iron metabolism.

Main Methods:

  • Positional cloning and fine mapping of the disease locus in families of Greek descent.
  • Mutation analysis in Greek, Canadian, and French families.
  • Analysis of HFE2 transcript expression and urinary hepcidin levels.

Main Results:

  • Identified and cloned a new gene, HFE2 (hemojuvelin), crucial for iron metabolism.
  • Found multiple deleterious mutations in HFE2, with G320V being common across populations.
  • HFE2 expression is restricted to liver, heart, and skeletal muscle.
  • Individuals with juvenile hemochromatosis showed depressed urinary hepcidin levels.

Conclusions:

  • HFE2 is the gene associated with juvenile hemochromatosis.
  • Hemojuvelin plays a critical role in iron metabolism by modulating hepcidin expression.
  • HFE2 is likely not the hepcidin receptor but influences its regulation.

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