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Published on: May 10, 2022
Frataxin interacts with Isu1 through a conserved tryptophan in its beta-sheet
Sébastien Leidgens1, Sébastien De Smet, Françoise Foury
1Unité de Biochimie Physiologique, Institut des Sciences de la Vie, Université Catholique de Louvain, Louvain-la-Neuve, Belgium.
Abstract:
Friedreich's ataxia is a neurodegenerative disease caused by the low expression of frataxin, a mitochondrial iron-binding protein which plays an important, but non-essential, role in the formation of iron-sulfur (Fe/S) clusters. It has been shown that Yfh1, the yeast frataxin homologue, interacts functionally and physically with Isu1, the scaffold protein on which the Fe/S clusters are assembled. The large beta-sheet platform of frataxin is a good ligand candidate for this interaction. We have generated 12 yeast mutants in conserved residues of the beta-sheet protruding at the surface or buried in the protein core. The Q129A, I130A, W131A(F) and R141A mutations, which reside in surface exposed residues of the fourth and fifth beta-strands, result in severe cell growth inhibition on high-iron media and low aconitase activity, indicating that Fe/S cluster biosynthesis is impaired. The null phenotype of the I130A mutant results from the high instability of the protein, pointing that this buried residue is essential for folding. In contrast, Gln-129, Trp-131 and Arg-141 residues which are spatially closely clustered define a patch important for protein function. Co-immunoprecipitation experiments using cell extracts show that W131A, unlike W131F, is the sole mutation that strongly decreases the interaction with Isu1. Therefore, Trp-131, which is the only strictly conserved frataxin residue in all sequenced species, appears as a major contributor to the interaction with Isu1 through its surface-exposed aromatic side chain.
Insights
Researchers identified key residues in frataxin, a protein linked to Friedreich
Area of Science:
- Biochemistry
- Molecular Biology
- Neurogenetics
Background:
- Friedreich's ataxia is a neurodegenerative disease linked to reduced frataxin expression.
- Frataxin is crucial for mitochondrial iron-sulfur (Fe/S) cluster biosynthesis.
- Yeast frataxin homologue (Yfh1) interacts with Isu1, the Fe/S cluster assembly scaffold.
Purpose of the Study:
- To investigate the role of frataxin's beta-sheet platform in its interaction with Isu1.
- To identify specific residues critical for frataxin-Isu1 interaction and Fe/S cluster biogenesis.
Main Methods:
- Generated 12 yeast mutants targeting conserved residues in frataxin's beta-sheet.
- Assessed Fe/S cluster biosynthesis via cell growth on high-iron media and aconitase activity.
- Utilized co-immunoprecipitation to evaluate frataxin-Isu1 interaction.
Main Results:
- Mutations Q129A, W131A, and R141A impaired Fe/S cluster biosynthesis, indicated by growth inhibition and low aconitase activity.
- Mutation I130A caused protein instability, essential for folding.
- Tryptophan-131 (W131) mutation significantly reduced interaction with Isu1, highlighting its critical role.
Conclusions:
- A surface-exposed patch including Gln-129, Trp-131, and Arg-141 is vital for frataxin function.
- Trp-131 is a key residue for frataxin's interaction with Isu1, essential for Fe/S cluster formation.
- Understanding these interactions provides insights into Friedreich's ataxia pathogenesis.
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