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Uzun, H. D.

Publications and source records attributed to Uzun, H. D..

2 recordsLinked to original sources

Sterols govern membrane susceptibility to saponin-induced lysis

Saponins are natural detergents that interact with cellular membranes, causing deterioration leading to membrane disruption. The magnitude of these effects depends on both the saponin structure and target membrane composition, where sterols play a key modulating role in saponin-membrane interaction. We investigated the influence of different sterol classes on saponin-induced membrane lysis. The bioactive, cytotoxic saponin -hederin induced permeability in membranes containing zoosterol and mycosterol, whereas phytosterol-containing membranes were resistant to lysis in vitro. Similarly, in yeast, -hederin caused significant cell lysis, while in the ergosterol-deficient erg3{Delta} and pdr18{Delta} mutants, cell lysis was minimal. Supplementing phytosterols to yeast provided resistance to -hederin-induced lysis. Molecular dynamics simulations provide novel mechanistic insights, showing that the efficacy of the activity of -hederin is proportional to the sterol type in the membrane. Our findings reveal that while zoosterols and mycosterols render membranes vulnerable to bioactive saponins, phytosterols protect membranes from saponin-induced lysis in vitro, in vivo and in silico.

molecular biology↗

Trans-Translation inhibitors and copper ions synergize for enhanced antibiotic activity

Trans-Translation is the most effective ribosome rescue mechanism and a compelling target for new antimicrobial agents. A recent proteomic study revealed similarities between the responses of Bacillus subtilis to the inhibitors small-molecule inhibitors oxadiazole KKL-40 and tetrazole KKL-55 and divalent cation ionophores, indicating the disturbance of metal homeostasis as potential secondary mechanism of action. Here, we report increased copper levels in KKL-40 and KKL-55-treated B. subtilis. Both inhibitors form copper complexes that enter large unilamellar vesicles. Copper supplementation enhanced the antibacterial activity against B. subtilis by simultaneously increasing inhibitor and copper uptake. The co-treatment of B. subtilis with trans-translation inhibitors and copper concentrations normally benign for trans-translation-competent cells, caused an immediate stalling of growth and translation, as observed at higher KKL-40 and KKL-55 concentrations without copper supplementation. Proteome analysis showed that during translation stalling cells were unable to mount an effective copper toxicity response. Taken together, the synergetic uptake of KKL-40 and KKL-55 with copper leads to a quick-onset translation stalling, preventing B. subtilis from counteracting the toxic effects of rapid copper influx. Significance statementThe challenge of antimicrobial resistance is growing, necessitating an exploration of novel antibiotic targets. Among these, trans-translation has attracted considerable attention due to its ubiquitous presence in bacteria as well as its role in virulence and pathogenesis. Several inhibitors of trans-translation have been identified in a target-based screening using a whole-cell assay. However, recent proteomic profiling studies suggested that the tested trans-translation inhibitors might have an additional mode of action. In this work, we shed light on their previously undiscovered copper ionophore activity and explore the consequences of co-treating B. subtilis with KKL-40 or KKL-55 and CuCl2. This co-treatment results in a rapid antibiotic influx, and, consequently to the stalling of ribosomes, translation, and bacterial growth. Simultaneously, massive amounts of copper accumulate in the cells, the toxic effects of which require a copper stress response to mitigate. However, such a response is averted by the stalled translation. Dual mechanism antibacterial agents are attractive because they are typically associated with slow emergence of resistance. A deep understanding of the complex interplay of KKL-40 and KKL-55 with metal ions will help to fully exploit trans-translation as an antibacterial target and to develop KKL-40 and KKL-55-based antibiotics into novel treatments for bacterial infections.

microbiology↗