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Role of L-type Ca2+ channels in iron transport and iron-overload cardiomyopathy
Gavin Y Oudit1, Maria G Trivieri, Neelam Khaper
1Heart and Stroke/Richard Lewar Centre of Excellence, University Health Network, University of Toronto, Ontario, M5S 3E2, Canada.
Insights
Iron overload, from hereditary hemochromatosis and hemosiderosis, causes organ damage. L-type Ca2+ channels (LTCC) facilitate iron uptake, suggesting LTCC blockers as a potential therapy for iron overload conditions.
Area of Science:
- Biochemistry
- Cardiology
- Genetics
Background:
- Iron overload, including hereditary hemochromatosis and secondary hemosiderosis, is a growing global health concern.
- Excess iron accumulates in organs like the liver, brain, heart, and endocrine glands, leading to significant morbidity and mortality.
- Cardiac iron deposition causes heart dysfunction and is a key factor in patient survival.
Purpose of the Study:
- To investigate the mechanisms of iron transport in iron overload conditions.
- To identify high-capacity iron uptake pathways in cardiomyocytes and other excitable cells.
- To explore the therapeutic potential of targeting these pathways for iron overload treatment.
Main Methods:
- The study focuses on understanding iron transport mechanisms.
- It highlights the role of L-type Ca2+ channels (LTCC) in ferrous iron (Fe2+) uptake.
- Compares LTCC to low-capacity transporters under normal and overload conditions.
Main Results:
- L-type Ca2+ channels (LTCC) are identified as high-capacity pathways for ferrous iron (Fe2+) uptake into cardiomyocytes during iron overload.
- Fe2+ uptake via LTCC is also implicated in pancreatic beta cells, anterior pituitary cells, and neurons.
- This suggests LTCC play a critical role in iron accumulation in various tissues.
Conclusions:
- L-type Ca2+ channels (LTCC) are crucial for iron uptake in cardiomyocytes and other excitable cells under iron overload.
- Blocking LTCC may offer a novel therapeutic strategy to mitigate iron toxicity.
- Further research into LTCC function could lead to new treatments for iron overload disorders.
Abstract:
Excessive body iron or iron overload occurs under conditions such as primary (hereditary) hemochromatosis and secondary iron overload (hemosiderosis), which are reaching epidemic levels worldwide. Primary hemochromatosis is the most common genetic disorder with an allele frequency greater than 10% in individuals of European ancestry, while hemosiderosis is less common but associated with a much higher morbidity and mortality. Iron overload leads to iron deposition in many tissues especially the liver, brain, heart and endocrine tissues. Elevated cardiac iron leads to diastolic dysfunction, arrhythmias and dilated cardiomyopathy, and is the primary determinant of survival in patients with secondary iron overload as well as a leading cause of morbidity and mortality in primary hemochromatosis patients. In addition, iron-induced cardiac injury plays a role in acute iron toxicosis (iron poisoning), myocardial ischemia-reperfusion injury, Friedreich ataxia and neurodegenerative diseases. Patients with iron overload also routinely suffer from a range of endocrinopathies, including diabetes mellitus and anterior pituitary dysfunction. Despite clear connections between elevated iron and clinical disease, iron transport remains poorly understood. While low-capacity divalent metal and transferrin-bound transporters are critical under normal physiological conditions, L-type Ca2+ channels (LTCC) are high-capacity pathways of ferrous iron (Fe2+) uptake into cardiomyocytes especially under iron overload conditions. Fe2+ uptake through L-type Ca2+ channels may also be crucial in other excitable cells such as pancreatic beta cells, anterior pituitary cells and neurons. Consequently, LTCC blockers represent a potential new therapy to reduce the toxic effects of excess iron.
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