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Kober, L.

Publications and source records attributed to Kober, L..

2 recordsLinked to original sources

Mixtures that Matter: Correlation Patterns in Antibacterial and Cytotoxic Activities of Five Hop Isolates

Antimicrobial resistance (AMR) has resulted in the need for the development of alternative strategies for combating pathogens and growth promotion of poultry, including the use of plant-derived compounds such as hop (Humulus lupulus) isolates. The present study evaluates the correlation patterns of the biological activity of five major hop isolates (humulone, lupulone, isohumulone, xanthohumol, and isoxanthohumol) against Bacillus subtilis, Micrococcus luteus, and a chicken cell line UMNSAH/DF-1 using a two-dimensional checkerboard assay. Fractional inhibitory concentrations ({sum}FIC) were used to classify interactions as additive, synergistic, or antagonistic, and selectivity indices assessed antibacterial versus cytotoxic effects. On B. subtilis, combinations were predominantly additive, whereas M. luteus, in contrast, showed variable interactions, including also synergistic (humulone + lupulone) and antagonistic combinations (isohumulone + isoxanthohumol), demonstrating the impact of the metabolic resilience of the target organism. Cytotoxicity in UMNSAH/DF-1 cells was largely additive, with synergistic effects observed only for isomerized compounds. Selectivity analysis highlighted humulone-lupulone combinations as most favorable, offering high antibacterial activity with minimal cytotoxicity. These results provide novel insights for selecting hop isolate combinations for the development of phytogenic feed additives (PFAs), emphasizing that both compound composition and target organism physiology critically shape efficacy and safety outcomes.

microbiology↗

putzig safeguards genome integrity by contributing to the Piwi-mediated repression of transposon activity in the female germline of Drosophila in a two-tiered fashion

Genome integrity in the germline is jeopardized by the activity of transposable elements (TEs). Transposon activity is kept in check by the Piwi-piRNA pathway, which silences TEs post-transcriptionally in the cytoplasm as well as co-transcriptionally in the nucleus. piRNAs derive from long precursor transcripts originating at piRNA-loci by non-conventional transcription. They are processed in the cytoplasm and loaded into Piwi-piRNA complexes that then enter the nucleus to bind to target RNAs and direct local heterochromatin formation at TE loci, involving several downstream effectors. In this work, we have analyzed the role of Putzig (Pzg) in Piwi-mediated TE silencing in the female germline. Pzg has multi-facetted roles during Drosophila development and is important for DNA integrity, germ cell differentiation and survival. Here, we provide evidence for a two-tier activity of Pzg by serving as a hub for various Piwi-pathway members. Firstly, Pzg assists transcription initiation at piRNA clusters by coupling the Trf2-Moonshiner transcription initiation complex to the Rhino-Deadlock-Cutoff complex, thereby promoting formation of piRNA-precursor transcripts. Secondly, in the context of co-transcriptional gene silencing, Pzg licences heterochromatin formation by linking the Piwi-piRNA silencing machinery and the histone demethylase Lsd1, involved in promoter inactivation.

genetics↗