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Fourati, Z.

Publications and source records attributed to Fourati, Z..

2 recordsLinked to original sources

Dual-stage inhibition of Plasmodium falciparum by a Skeletocutis derived fungal metabolite targeting Pyruvate Kinase II

Plasmodium falciparum resistance to current first line treatments is threatening at-risk populations and underscores the urgent need for novel therapeutic targets and drugs. P. falciparum pyruvate kinases I and II are two essential enzymes with distinct roles and subcellular localizations within the parasite. PfPyrKI is cytosolic, while PfPyrKII is found in the apicoplast, a specific organelle of Apicomplexa, where it is required for the production of (d)NTPs essential for apicoplast maintenance. We identify skeletocutin E, a Basidiomycete-derived metabolite, as a specific inhibitor of PfPyrKII. Skeletocutin E inhibits in vitro the activity of PfPyrKII with an IC50 of 0.52 {+/-} 0.08 {micro}M through a mixed inhibition mechanism and does not affect the activities of three human pyruvate kinases. Structure-activity relationship analyses using synthetic skeletocutin E analogues allowed us to identify the molecular determinants of this inhibition. Furthermore, determination of the quaternary structure of PfPyrKII by mass photometry, showed that this enzyme exists as monomers, dimers, and tetramers in equal proportions, revealing its singularity compared to other pyruvate kinases. Interestingly, skeletocutin E does not alter the distribution of the complexes, indicating that it does not interact at the subunit interfaces. Importantly, skeletocutin E inhibits P. falciparum growth in both blood and liver stages, with IC values of 3.56 {+/-} 0.50 {micro}M in red blood cells and 3.70 {+/-} 0.74 {micro}M in primary human hepatocytes. Together, these findings establish PfPyrKII as a druggable antimalarial target and identify skeletocutin E as a promising lead compound for the rational development of dual-stage antimalarial therapies.

microbiology↗

Vestibular modulation by stimulant derivatives in a pentameric ligand-gated ion channel

Allosteric modulation of pentameric ligand-gated ion channels (pLGICs) is critical to the action of neurotransmitters and many psychoactive drugs. However, details of their modulatory mechanisms remain unclear, especially beyond the orthosteric neurotransmitter-binding sites. The recently reported prokaryotic channel sTeLIC, a pH-gated homolog of eukaryotic receptors in the pLGIC family, is thought to be modulated by aromatic compounds via a relatively uncharacterized modulatory site in the extracellular vestibule. Here, we show that sTeLIC is sensitive to potentiation by psychostimulant derivatives. By determining new cryo-EM and X-ray structures in closed and open states, and testing the impact of targeted mutations on electrophysiological behavior, we show that several amphiphilic compounds preferentially bind a vestibular pocket in the contracted open-state extracellular domain. This work provides a detailed structure-function mechanism for allosteric potentiation via a noncanonical lig- and site, with potential conservation in eukaryotic pentameric ligand-gated ion channels.

biophysics↗