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Recent Advances in the Elucidation of Frataxin Biochemical Function Open Novel Perspectives for the Treatment of Friedreich’s Ataxia
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Friedreich’s ataxia (FRDA) is the most prevalent autosomic recessive ataxia and is associated with a severe cardiac hypertrophy and less frequently diabetes. It is caused by mutations in the gene encoding frataxin (FXN), a small mitochondrial protein. The primary consequence is a defective expression of FXN, with basal protein levels decreased by 70–98%, which foremost affects the cerebellum, dorsal root ganglia, heart and liver. FXN is a mitochondrial protein involved in iron metabolism but its exact function has remained elusive and highly debated since its discovery. At the cellular level, FRDA is characterized by a general deficit in the biosynthesis of iron-sulfur (Fe-S) clusters and heme, iron accumulation and deposition in mitochondria, and sensitivity to oxidative stress. Based on these phenotypes and the proposed ability of FXN to bind iron, a role as an iron storage protein providing iron for Fe-S cluster and heme biosynthesis was initially proposed. However, this model was challenged by several other studies and it is now widely accepted that FXN functions primarily in Fe-S cluster biosynthesis, with iron accumulation, heme deficiency and oxidative stress sensitivity appearing later on as secondary defects. Nonetheless, the biochemical function of FXN in Fe-S cluster biosynthesis is still debated. Several roles have been proposed for FXN: iron chaperone, gate-keeper of detrimental Fe-S cluster biosynthesis, sulfide production stimulator and sulfur transfer accelerator. A picture is now emerging which points toward a unique function of FXN as an accelerator of a key step of sulfur transfer between two components of the Fe-S cluster biosynthetic complex. These findings should foster the development of new strategies for the treatment of FRDA. We will review here the latest discoveries on the biochemical function of frataxin and the implication for a potential therapeutic treatment of FRDA.
Frontiers Media SA
Title: Recent Advances in the Elucidation of Frataxin Biochemical Function Open Novel Perspectives for the Treatment of Friedreich’s Ataxia
Description:
Friedreich’s ataxia (FRDA) is the most prevalent autosomic recessive ataxia and is associated with a severe cardiac hypertrophy and less frequently diabetes.
It is caused by mutations in the gene encoding frataxin (FXN), a small mitochondrial protein.
The primary consequence is a defective expression of FXN, with basal protein levels decreased by 70–98%, which foremost affects the cerebellum, dorsal root ganglia, heart and liver.
FXN is a mitochondrial protein involved in iron metabolism but its exact function has remained elusive and highly debated since its discovery.
At the cellular level, FRDA is characterized by a general deficit in the biosynthesis of iron-sulfur (Fe-S) clusters and heme, iron accumulation and deposition in mitochondria, and sensitivity to oxidative stress.
Based on these phenotypes and the proposed ability of FXN to bind iron, a role as an iron storage protein providing iron for Fe-S cluster and heme biosynthesis was initially proposed.
However, this model was challenged by several other studies and it is now widely accepted that FXN functions primarily in Fe-S cluster biosynthesis, with iron accumulation, heme deficiency and oxidative stress sensitivity appearing later on as secondary defects.
Nonetheless, the biochemical function of FXN in Fe-S cluster biosynthesis is still debated.
Several roles have been proposed for FXN: iron chaperone, gate-keeper of detrimental Fe-S cluster biosynthesis, sulfide production stimulator and sulfur transfer accelerator.
A picture is now emerging which points toward a unique function of FXN as an accelerator of a key step of sulfur transfer between two components of the Fe-S cluster biosynthetic complex.
These findings should foster the development of new strategies for the treatment of FRDA.
We will review here the latest discoveries on the biochemical function of frataxin and the implication for a potential therapeutic treatment of FRDA.
Related Results
Functional studies of frataxin
Functional studies of frataxin
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Case report on Friedreich ataxia with coronary artery disease and structural heart disease
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Background:
Friedreich's ataxia (FRDA) is a rare hereditary neurodegenerative disorder characterized
by progressive ataxia, cardiomyopathy, and diabetes. The disease is caused by a...
Glial cell activation precedes neurodegeneration in the cerebellar cortex of the YG8-800 murine model of Friedreich’s ataxia
Glial cell activation precedes neurodegeneration in the cerebellar cortex of the YG8-800 murine model of Friedreich’s ataxia
Abstract
Friedreich’s ataxia is a hereditary neurodegenerative disorder resulting from reduced levels of the protein frataxin due to an expanded ...
Frataxin activates mitochondrial energy conversion and oxidative phosphorylation
Frataxin activates mitochondrial energy conversion and oxidative phosphorylation
Friedreich's ataxia (FA) is an autosomal recessive disease caused
by decreased expression of the mitochondrial protein frataxin. The
biological function of frataxin is unclear. T...
FRIEDREICH'S ATAXIA AND ITS CARDIOVASCULAR MANIFESTATIONS
FRIEDREICH'S ATAXIA AND ITS CARDIOVASCULAR MANIFESTATIONS
Friedreic’s Ataxia is a disease characterized by modification of the FRDA gene on chromosome 9q13. Affection of this protein induces altered expression of frataxin. When this is al...

