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Bettati, S.

Publications and source records attributed to Bettati, S..

4 recordsLinked to original sources

IsdH binding to hemoglobin:haptoglobin is decoupled from iron acquisition in Staphylococcus aureus

Staphylococcus aureus requires iron for proliferation during infection and acquires it mainly from host hemoglobin (Hb) through the iron-regulated surface determinant (Isd) system. The hemophores IsdB and IsdH mediate the initial steps of Hb recognition. Notably, IsdH also recognizes the hemoglobin:haptoglobin (HbHp) complex, although the molecular determinants and physiological relevance of this interaction remain unclear. Here, combining cryo-electron microscopy and biochemical and cellular assays, we define the basis of HbHp recognition by IsdH. The structure reveals how IsdH engages HbHp and captures the intrinsic conformational flexibility of the HbHp assembly. Functional analyses demonstrate that, despite retaining the ability to extract heme from HbHp, IsdH does not support S. aureus growth under iron-restricted conditions when HbHp is the sole iron source. These findings suggest that HbHp recognition by IsdH may serve functions beyond nutrient iron acquisition, contributing to modulation of host-pathogen interactions.

biochemistry↗

Two birds with one stone: a novel potential antibiotic blocking IsdB-mediated heme extraction by Staphylococcus aureus with serendipitous hemoglobin left-shifting activity

Infections caused by Staphylococcus aureus are closely linked to its ability to secure essential nutrients, including iron, which is extracted from the heme of human hemoglobin (Hb) through the iron-regulated surface determinant (Isd) system. The compound 4-[[2-[[5- (1H-indol-3-yl)-1,3,4-oxadiazol-2-yl]sulfanyl]acetyl]amino]benzoate (C35) was recently identified as a new potential antimicrobial agent for its ability to bind Hb and hamper its interaction with the staphylococcal hemophore IsdB in vitro. Here, we show that C35 inhibits S. aureus growth by specifically targeting the hemophore-driven iron acquisition system. Our findings confirm both the potential of C35 as a first-in-class protein-protein interaction inhibitor with antimicrobial activity, and the effectiveness of targeting hemophores as a strategy to inhibit S. aureus growth. To gain information for drug discovery purposes, the X-ray structure of Hb in the presence of the compound was solved. Unexpectedly, we discovered that, rather than the predicted binding pose, the molecule binds to tetrameric Hb in a cleft between the alpha subunits, stabilizing an R2 relaxed Hb conformation. This triggered further investigation of the effect of C35 on Hb functional properties, which showed a pronounced left-shift activity on oxygen binding curve (i.e., it strongly increases the Hb oxygen affinity). These results highlight C35 as a promising dual-acting compound with both antimicrobial activity and the ability to modulate Hb function through non-covalent stabilization of a high-affinity state. Author SummaryStaphylococcus aureus is a dangerous bacterium that can cause severe infections in humans. To grow and survive it needs iron, which it steals from our red blood cells by taking it from hemoglobin, the protein that carries oxygen in the blood. In this study, we focused on a small molecule, called C35, that blocks the interaction between hemoglobin and a key bacterial protein involved in heme acquisition. We found that C35 strongly inhibits the growth of S. aureus when hemoglobin is the only available source of iron, showing a potential new method to starve the pathogen and consequently fight the infection. Surprisingly, we also found that C35 increases the affinity of hemoglobin for oxygen. This dual action makes C35 a unique molecule for future therapeutic development, with potential applications both as a new antimicrobial agent and in the treatment of diseases related to hemoglobin function.

microbiology↗

Time-resolved X-ray solution scattering unveils the sequence of events leading to human Hb heme capture by Staphylococcus aureus IsdB

Infections caused by Staphylococcus aureus depend on its ability to acquire nutrients. One essential nutrient is iron, which is obtained from the heme of the human host hemoglobin (Hb) through a protein machinery called Iron-regulated Surface Determinant (Isd). IsdB is the protein in charge of heme extraction from Hb, which is the first step of the chain of events leading to iron transfer to the bacterium cell interior. In order to elucidate the molecular events leading from the formation of the initial IsdB:Hb complex to heme extraction, we have performed a time-resolved X-ray solution scattering (TR-XSS) investigation combined with a rapid mixing triggering approach. We succeeded in defining the stoichiometry of IsdB:Hb binding and in describing the kinetics of the subsequent structural changes. The presented approach is potentially applicable to unveil the complex kinetic pathways generated by protein-protein interaction in different biological systems.

biochemistry↗

Cysteine enrichment mediates co-option of uricase in reptilian skin and transition to uricotelism

Uric acid is the main means of nitrogen excretion in uricotelic vertebrates (birds and reptiles) and the end product of purine catabolism in humans and a few other mammals. While uricase is inactivated in mammals unable to degrade urate, the presence of orthologous genes without inactivating mutations in avian and reptilian genomes is unexplained. Here we show that the Gallus gallus gene we name cysteine-rich urate oxidase (CRUOX) encodes a functional protein representing a unique case of cysteine enrichment in the evolution of vertebrate orthologous genes. CRUOX retains the ability to catalyze urate oxidation to hydrogen peroxide and 5-hydroxyisourate (HIU), albeit with a 100-fold reduced efficiency. However, differently from all uricases hitherto characterized, it can also facilitate urate regeneration from HIU, a catalytic property which we propose depends on its enrichment in cysteine residues. X-ray structural analysis highlights differences in the active site compared to known orthologs and suggests a mechanism for cysteine-mediated self-aggregation under H2O2-oxidative conditions. Cysteine enrichment was concurrent with transition to uricotelism and a shift in gene expression from the liver to the skin where CRUOX is co-expressed with {beta}-keratins. Therefore, the loss of urate degradation in amniotes has followed opposite evolutionary trajectories: while uricase has been eliminated by pseudogenization in some mammals, it has been repurposed as a redox-sensitive enzyme in the reptilian skin.

evolutionary biology↗