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Sechet, E.

Publications and source records attributed to Sechet, E..

2 recordsLinked to original sources

A connection between two ancient and essential cellular processes, iron-sulfur protein biogenesis and fatty acid synthesis, in Escherichia coli

Iron-sulfur [Fe-S] clusters are ubiquitous cofactors of a wide array of structural and functional diverse proteins. Acyl Carrier Protein (ACP) is the universal factor required for fatty acid (FA) synthesis. In this study in E. coli, we demonstrated that [Fe-S] and FA biosynthesis pathways are coordinated processes, driven by a physical interaction between ACP and the ISC [Fe-S] biogenesis machinery. Using bacterial two-hybrid assays, co-purification and biochemical analyses, we demonstrated a molecular interaction between ACP and IscS, the ISC machinery cysteine desulfurase that provides sulfur for [Fe-S] cluster formation. Structural modeling and directed mutagenesis pinpointed the ACP-binding site in a region of IscS shared for interactions with other components of the ISC [Fe-S] biogenesis system. At the cellular level, ACP depletion was found to disrupt ISC-dependent [Fe-S] cluster biogenesis, diminishing the activity of key [Fe-S]-dependent regulators (IscR, FNR, NsrR) and enzymes (aconitase, biotin synthase). Our findings underscore a functional link between [Fe-S] cluster biogenesis and fatty acid metabolism with far-reaching unexplored intricacies of metabolic coordination and cellular homeostasis. Comparison with eucaryotic systems highlight a strong evolutive driving force towards a link between [Fe-S] cluster and fatty acid biosynthesis in all living systems. ImportanceCellular functions rely on interconnected metabolic pathways, yet many regulatory links remain unexplored. Iron-sulfur [Fe-S] clusters are co-factors of proteins driving fundamental cellular processes, from respiration to gene regulation. Our study uncovers a direct connection between [Fe-S] cluster biogenesis and fatty acid biosynthesis. We demonstrate the molecular connection between these two essential cellular processes to lie within the interaction between the acyl carrier protein (ACP), a shuttle of fatty acid biosynthetic intermediates and IscS, the source of sulfur for [Fe-S] cluster assembly. Intriguingly, similar interactions between ACP and [Fe-S] building cysteine desulfurase have been observed in yeast and human models, yet resting on different molecular determinants. This points out the existence of a strong evolutive driving force towards establishing a link between [Fe-S] cluster and fatty acid biosynthesis in all living systems with far-reaching implications for metabolic coordination and cellular homeostasis.

microbiology↗

Role of the Escherichia coli ubiquinone-synthesizing UbiUVT pathway in adaptation to changing respiratory conditions

Isoprenoid quinones are essential for cellular physiology. They act as electron and proton shuttles in respiratory chains and in various biological processes. Escherichia coli and many , {beta}, and {gamma} proteobacteria possess two types of isoprenoid quinones: ubiquinone (UQ) is mainly used under aerobiosis, while (demethyl)menaquinones ((D)MK) are mostly used under anaerobiosis. Yet, we recently established the existence of an anaerobic O2- independent UQ biosynthesis pathway controlled by ubiT, ubiU, and ubiV genes. Here, we characterize the regulation of ubiTUV genes in E. coli. We show that the three genes are transcribed as two divergent operons that are both under the control of the O2 sensing Fnr transcriptional regulator. Phenotypic analyses using a menA mutant devoid of (D)MK revealed that UbiUV-dependent UQ synthesis is essential for nitrate respiration and for uracil biosynthesis under anaerobiosis, while it contributes, though modestly, to bacterial multiplication in the mouse gut. Moreover, we showed by genetic study and 18O2 labelling that UbiUV contribute to hydroxylation of ubiquinone precursors through a unique O2 - independent process. Last, we report a crucial role of ubiT in allowing E. coli to shift efficiently from anaerobic to aerobic conditions. Overall, this study uncovers a new facet of the strategy used by E. coli to adjust its metabolism upon changing O2 levels and respiratory conditions. This work links respiratory mechanisms to phenotypic adaptation, a major driver in the capacity of E. coli to multiply in gut microbiota, and of facultative anaerobic pathogens to multiply in their host. ABSTRACT IMPORTANCEEnterobacteria multiplication in the gastrointestinal tract is linked to microaerobic respiration and associated to various inflammatory bowel diseases. Our study focuses on biosynthesis of ubiquinone (UQ), a key player in respiratory chains, under anaerobiosis. The importance of this study stems from the fact that UQ usage was for long considered to be restricted to aerobic conditions. Here we investigated the molecular mechanism allowing UQ synthesis in the absence of O2 and searched for the anaerobic processes that UQ is fueling in such conditions. We found that UQ biosynthesis involves anaerobic hydroxylases, i.e. enzymes able to insert a O atom in the absence of O2. We also found that anaerobically synthesized UQ can be used for respiration on nitrate and synthesis of pyrimidine. Our findings are likely to be applicable to most facultative anaerobes, which count many pathogens (Salmonella, Shigella, Vibrio) and will help in unravelling microbiota dynamics.

microbiology↗