Turning Escherichia coli into a Frataxin-Dependent Organism

Archive ouverte

Roche, Béatrice | Agrebi, Rym | Huguenot, Allison | Ollagnier de Choudens, Sandrine | Barras, Frédéric | Py, Béatrice

Edité par CCSD ; Public Library of Science -

International audience. Fe-S bound proteins are ubiquitous and contribute to most basic cellular processes. A defect in the ISC components catalyzing Fe-S cluster biogenesis leads to drastic phenotypes in both eukaryotes and prokaryotes. In this context, the Frataxin protein (FXN) stands out as an exception. In eukaryotes, a defect in FXN results in severe defects in Fe-S cluster biogenesis, and in humans, this is associated with Friedreich's ataxia, a neurodegenerative disease. In contrast, prokaryotes deficient in the FXN homolog CyaY are fully viable, despite the clear involvement of CyaY in ISC-catalyzed Fe-S cluster formation. The molecular basis of the differing importance in the contribution of FXN remains enigmatic. Here, we have demonstrated that a single mutation in the scaffold protein IscU rendered E. coli viability strictly dependent upon a functional CyaY. Remarkably, this mutation changed an Ile residue, conserved in prokaryotes at position 108, into a Met residue, conserved in eukaryotes. We found that in the double mutant IscU(IM)Delta cyaY, the ISC pathway was completely abolished, becoming equivalent to the Delta iscU deletion strain and recapitulating the drastic phenotype caused by FXN deletion in eukaryotes. Biochemical analyses of the "eukaryotic-like" IscU(IM) scaffold revealed that it exhibited a reduced capacity to form Fe-S clusters. Finally, bioinformatic studies of prokaryotic IscU proteins allowed us to trace back the source of FXN-dependency as it occurs in present-day eukaryotes. We propose an evolutionary scenario in which the current mitochondrial Isu proteins originated from the IscU(IM) version present in the ancestor of the Rickettsiae. Subsequent acquisition of SUF, the second Fe-S cluster biogenesis system, in bacteria, was accompanied by diminished contribution of CyaY in prokaryotic Fe-S cluster biogenesis, and increased tolerance to change in the amino acid present at the 108th position of the scaffold.

Suggestions

Du même auteur

Bioenergetic State of Escherichia coli Controls Aminoglycoside Susceptibility

Archive ouverte | El Khoury, Jessica | CCSD

International audience. Aminoglycosides (AG) have been used against Gram-negative bacteria for decades. Yet, how bacterial metabolism and environmental conditions modify AG toxicity is poorly understood. Here, we sh...

Fe-S Cluster Biosynthesis Controls Uptake of Aminoglycosides in a ROS-Less Death Pathway

Archive ouverte | Ezraty, Benjamin | CCSD

International audience. Unreactive Death A controversial proposal that all bactericidal antibiotics kill by reactive oxygen species (ROS) and not by their primary cell target has recently attracted high-profile refu...

The ErpA/NfuA complex builds an oxidation-resistant Fe-S cluster delivery pathway

Archive ouverte | Py, Beatrice | CCSD

International audience. Fe-S cluster containing proteins occur in most organisms wherein they assist a myriad of diverse processes from metabolism to DNA repair via gene expression and bioenergetic processes. Here w...

Chargement des enrichissements...