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Biology subjects

Deschner, F.

Publications and source records attributed to Deschner, F..

3 recordsLinked to original sources

Pathogen-driven reactivation of metabolite prodrugs defines nitroxoline's iron-deprivation antibiotic activity

The rise of antimicrobial resistance warrants renewed attention to established but overlooked antibiotics such as nitroxoline (NTX). Here, we systematically dissect NTXs mode of action and investigate the contribution of its first-pass metabolites, NTX-sulphate and NTX-glucuronide. We identified metallophore-mediated cellular iron deprivation as the principal antibacterial mechanism of NTX, characterized by induction of iron acquisition pathways and Fe-S cluster proteins, and concomitant loss of protein-bound iron. In contrast, NTX metabolites were biologically inactive and lacked metal-chelating properties. Ex vivo assays demonstrated that clinically relevant uropathogens, including Escherichia coli and Klebsiella pneumoniae, efficiently reconvert these metabolites into active NTX in human urine. Together, our findings establish a mechanistic framework linking NTX antibacterial activity, host detoxification, and pathogen-dependent metabolite reactivation, and providing a molecular explanation for NTXs enduring therapeutic potential and favourable safety profile.

microbiology↗

Chlorotonils exhibit potent activity against Mycobacterium tuberculosis, while resistance is mediated by MmpR5-MmpL5

Treatment of Mycobacterium tuberculosis (Mtb) is challenging and requires administration of at least four different antibiotics. Unfortunately, multi-drug resistant Mtb strains continue to emerge, undermining the effectiveness of current treatment regimens and highlighting the urgent need for new therapeutics. In this study, we evaluated the potential of natural product-derived chlorotonils as anti-Mtb agents. We demonstrate that chlorotonils exhibit nanomolar potency against a range of attenuated and virulent Mtb strains. Mechanistic studies and resistance profiling in Mtb revealed that chlorotonils affect both lipid and energy metabolism. Through systems biology approaches, including the construction of an Mtb CRISPRi library specifically designed for chemical-genomic profiling, we identified MmpR5/MmpL5 as major driver of chlorotonil-resistance in Mtb leading also to cross-resistance with bedaquiline. Our findings highlight chlorotonils as valuable chemical tools to further dissect the role and function of the MmpS5-MmpL5 efflux pump in drug-resistant Mtb.

microbiology↗

Cystobactamid off-target profiling reveals favorable safety, superoxide reduction, and SCARB1 inhibition in eukaryotes

Antimicrobial resistance (AMR) poses a fundamental global threat, necessitating new strategies for effective therapies. Cystobactamids (CYS), a class of antibacterial agents targeting bacterial gyrase and topoisomerase IV, represent a non-traditional chemical scaffold with broad-spectrum activity. For toxicological de-risking, we performed a comprehensive profiling on eukaryotic cells, focusing on cytotoxicity, genotoxicity, and mitochondrial toxicity, demonstrating cellular safety and superoxide scavenging properties. Studies in zebrafish embryos assessed developmental, cardiovascular, and hepatic toxicity, indicating a favorable in vivo safety profile. Metabolism studies revealed glucuronidation and amide bond hydrolysis as key pathways, whereby CYS metabolic stability substantially improved by cobicistat co-treatment. Affinity-based protein profiling identified the cholesterol- and HCV-receptor scavenger receptor class B member 1 (SCARB1) as a primary eukaryotic off-target protein, with cystobactamids shown to inhibit SCARB1s function, preventing hepatitis C virus pseudoparticle entry into cells. These findings suggest a high therapeutic potential for cystobactamids and highlight SCARB1 as a primary eukaryotic target.

pharmacology and toxicology↗