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Dervishi, M.

Publications and source records attributed to Dervishi, M..

2 recordsLinked to original sources

Degradation of biopesticidal triterpenoid saponins by the soil bacterium Arthrobacter sp. α-11c

BackgroundSaponins, a diverse group of glycosylated triterpenoid and steroid compounds produced by plants, exhibit potent insecticidal activity and are promising candidates for sustainable pest management. However, their potential persistence in soil raises concerns about ecological impacts, highlighting the need to understand microbial degradation rates and pathways. ResultsThis study reports the isolation of Arthrobacter sp. 11c, and its ability of fully degrading two hederagenin-based pentacyclic triterpenoid saponins: -hederin, hederacoside C, and the corresponding sapogenin hederagenin. All three compounds were fully metabolized within six hours when provided as carbon source. Fractionation experiments confirmed intracellular uptake and degradation of the saponins. Genome analysis of 11c revealed diverse and multiple glycosidase genes, yet basal glucosidase activity remained unchanged when cultured with these saponins. Comparative genomics with Arthrobacter sp. 12b, a closely related strain unable to degrade saponins, revealed two unique glycosidase gene clusters in 11c, suggesting a role in adaptation to saponin metabolism. ConclusionThese findings enhance our understanding of bacterial degradation of plant triterpenoid saponins and provide a foundation for evaluating their environmental fate. This knowledge supports the safe and sustainable use of saponin-based biopesticides in agriculture by identifying microbial partners that contribute to their breakdown in soil ecosystems.

microbiology↗

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↗