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Gedeon, A.

Publications and source records attributed to Gedeon, A..

4 recordsLinked to original sources

Assessing Corynebacterium glutamicum as a surrogate of Mycobacterium tuberculosis for DNA gyrase inhibitor design.

DNA gyrase is an essential bacterial enzyme and a clinically validated target for the treatment of tuberculosis. However, the discovery of new inhibitors remains limited by the many challenges regarding the manipulation on pathogenic mycobacteria. This study validates Corynebacterium glutamicum (Cglu) as a safe, non-pathogenic surrogate for Mycobacterium tuberculosis (Mtb) to investigate DNA gyrase and facilitate the identification of new inhibitors. Using Cglu as a target allows for fast whole-cell screening under safe conditions while ensuring efficient drug uptake. Cglu shares key physiological features with Mtb, including genome size, complex cell wall structure, and a single type I and type II topoisomerase. Structural and functional comparisons emphasize the similarity of Cglu and Mtb gyrases, which share 70% sequence identity and show comparable catalytic properties and responsiveness to known inhibitors. Thus, the cryo-EM structure of the Cglu gyrase-DNA complex at 3.2 [A] resolution reveals highly conserved drug-binding pockets for known anti-gyrase inhibitors and the genetic depletion of gyrA or gyrB in Cglu causes severe growth and morphological defects, mirroring the effects of chemical inhibition and allowing to link gyrase function to cellular phenotypes. Comparative imaging of different inhibitor classes (fluoroquinolones, aminocoumarins, NBTIs) uncovers distinct morphological signatures that reflect each compounds mode of action. Finally, cross-species complementation confirms functional conservation but also highlights subtle structural differences affecting efficiency. Together, these findings establish Cglu as a robust and biosafe model for dissecting gyrase function, visualizing DNA topology dynamics, and accelerating the discovery of gyrase-targeting antimicrobials. More generally, our studies demonstrate the feasibility of using Cglu as a cell-based screening platform to discover new anti-tuberculous compounds targeting conserved mechanisms, not only for validated TB drug targets such as DNA gyrase but also for new, yet to be identified, targets.

microbiology↗

Structural basis of MfpD, a versatile pathogeny protein from the mfp conservon of Mycobacterium tuberculosis

The mfp conservon of Mycobacterium tuberculosis has been associated with fluoroquinolone resistance and encodes five conserved proteins, including the small GTPase MfpB and its regulatory partner MfpD. In this study, we combined phylogenetic, structural, and biophysical approaches to define the molecular basis of MfpD function. MfpD adopts a Roadblock/LC7-like /{beta} fold and forms a stable dimer in solution, with hydrophobic 2-helix interactions stabilizing the interface. Additional biophysical analyses and AlphaFold3 modeling suggest that MfpD may promote GTP hydrolysis by MfpB through a noncanonical Switch I-dependent mechanism. These findings establish the first structural framework for MfpD-MfpB interactions, building on previously identified in vitro catalytic properties and proposing new insights into MfpDs non-catalytic pathogenesis activity of MfpD in macrophages. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=69 SRC="FIGDIR/small/709265v2_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@77b2d2org.highwire.dtl.DTLVardef@7d1908org.highwire.dtl.DTLVardef@f66eeforg.highwire.dtl.DTLVardef@ed159c_HPS_FORMAT_FIGEXP M_FIG GRAPHICAL ABSTRACT C_FIG

biochemistry↗

Exploring the multi-protein assembly of the enzymes of the de novo purine nucleotide biosynthetic pathway from Pseudomonas aeruginosa

Purine nucleotide biosynthesis is a crucial metabolic pathway responsible that produces building blocks essential for a plethora of cellular processes. In bacteria, the de novo purine nucleotide biosynthetic pathway (DNPNB) involves fifteen chemical steps catalysed by fourteen different enzymes. While the mammalian orthologues have been extensively shown to interact and form a metabolon named "purinosome", the possible existence of a prokaryotic equivalent was only recently revealed for the case of Escherichia coli. In this study, we explored the potential conservation of a bacterial purinosome-like complex in Pseudomonas aeruginosa, an opportunistic pathogen known for its high antibiotic resistance. Using a bacterial two-hybrid system, we mapped protein-protein interactions among all tested DNPNB enzymes in P. aeruginosa and revealed a dense interaction network. An in-silico protein-protein docking approach on three core enzymes allowed the structural reconstitution of a complex composed of PurK, PurE and PurC with a 4:8:8 stoichiometry, respectively. Interestingly, a tunnel connecting the different active sites has been revealed, showing a metabolon-like property for possible efficient substrate channelling. These findings support a conserved regulatory organization of purine biosynthesis in bacteria, providing deeper insights into bacterial metabolism and paving the way for potential antibiotic targets.

biochemistry↗

New insights into the echinocandin resistance in Candida spp. in the clinical setting

Despite a huge consumption of echinocandins, the emergence of resistance in Candida spp has remained overall limited. Here, we depicted the epidemiology of Candida spp in our center face to the echinocandins consumption. We postulate new hypotheses that may explain the shaping of candines resistance in the clinical setting. Epidemiology of Candida infections and echinocandin consumption were evaluated in our center over 12 years (2006-2018). Glucan synthase genes (fks1, fks2) were sequenced. The in vitro fitness was assessed for couple of isogenic strains, of which one was resistant. Finally, the modelling of Candida FKS proteins was realized. Despite a three-fold increase in echinocandin consumption, no significant emergence of resistance was observed. In Candida albicans, fks1 mutations affect the three-dimensional conformation of the glucan synthase, which may result in altered export of the glucan chain, which could explain the observed reduced fitness. In contrast, cross-complementation between FKS1 and FKS2 in Nakaseomyces glabratus might circumvent the negative impact on fitness. ConclusionsOur results support the fact that N. glabratus is more prone to the spread of echinocandin-resistant strains. The link between mutations in the glucan synthase and fitness of Candida strains might explain the difference in the species-specific emergence of echinocandins-resistant strains.

microbiology↗