Ca2+ channel blockers reverse iron overload by a new mechanism via divalent metal transporter-1
Ca2+ channel blockers reverse iron overload by a new mechanism via divalent metal transporter-1
Hereditary hemochromatosis and transfusional iron overload are frequent clinical conditions associated with progressive iron accumulation in parenchymal tissues, leading to eventual organ failure. We have discovered a new mechanism to reverse iron overload-pharmacological modulation of the divalent metal transporter-1 (DMT-1). DMT-1 mediates intracellular iron transport during the transferrin cycle and apical iron absorption in the duodenum. Its additional functions in iron handling in the kidney and liver are less well understood. We show that the L-type calcium channel blocker nifedipine increases DMT-1-mediated cellular iron transport 10- to 100-fold at concentrations between 1 and 100 microM. Mechanistically, nifedipine causes this effect by prolonging the iron-transporting activity of DMT-1. We show that nifedipine mobilizes iron from the liver of mice with primary and secondary iron overload and enhances urinary iron excretion. Modulation of DMT-1 function by L-type calcium channel blockers emerges as a new pharmacological therapy for the treatment of iron overload disorders.
- Innsbruck Medical University Austria
- European Bioinformatics Institute United Kingdom
- European Molecular Biology Laboratory Germany
- Paracelsus Medical University Austria
- University of Milan Italy
Mice, Knockout, Iron Overload, Nifedipine, Reverse Transcriptase Polymerase Chain Reaction, Iron, Immunoblotting, Biological Transport, Active, Calcium Channel Blockers, Microarray Analysis, Electrophysiology, Mice, Liver, COS Cells, Chlorocebus aethiops, hemochromatosis ; iron transport ; divalent metal transporter-1 ; duodenum ; liver ; nifedipine, Animals, Humans, Hemochromatosis, Cation Transport Proteins
Mice, Knockout, Iron Overload, Nifedipine, Reverse Transcriptase Polymerase Chain Reaction, Iron, Immunoblotting, Biological Transport, Active, Calcium Channel Blockers, Microarray Analysis, Electrophysiology, Mice, Liver, COS Cells, Chlorocebus aethiops, hemochromatosis ; iron transport ; divalent metal transporter-1 ; duodenum ; liver ; nifedipine, Animals, Humans, Hemochromatosis, Cation Transport Proteins
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