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Daems, S.

Publications and source records attributed to Daems, S..

2 recordsLinked to original sources

Menaquinone depletion resensitises bedaquiline-resistant tuberculosis

Tuberculosis remains a leading cause of global mortality, and rising bedaquiline resistance threatens the effectiveness of current drug-resistant treatment regimens. Bedaquiline resistance typically arises through mutations in Rv0678 that upregulate drug efflux and confer cross-resistance to multiple drug classes. Here, we identify and optimise a chemical series targeting MenG, a central enzyme in the menaquinone biosynthesis pathway, yielding potent bactericidal inhibitors with in vivo efficacy. Strikingly, MenG inhibition restored bedaquiline susceptibility in efflux-mediated resistant strains, an effect confirmed in vivo where combination therapy achieved a 99.8% reduction in bacterial burden compared with bedaquiline alone. Potentiation also extended to pretomanid and other key agents. Disruption of upstream menaquinone and shikimate pathway enzymes produced similar resensitisation, establishing these pathways as tractable targets for restoring drug susceptibility in Mycobacterium tuberculosis. These findings provide a novel strategy to overcome bedaquiline resistance and strengthen future regimens for efflux-mediated drug-resistant tuberculosis.

microbiology↗

The last one in the row but decisive: PPDK as a potential key regulator of diurnal deacidification in CAM leaves across varying PPFD and photoperiod conditions

O_LICrassulacean acid metabolism (CAM) plants primarily fix atmospheric CO2 at night and store it as malic acid in their vacuoles. During the light period, vacuolar malate is remobilised and decarboxylated to supply CO2 for Rubisco assimilation. Light intensity and photoperiod are believed to play crucial roles in regulating this process, but their influences on the underlying molecular and biochemical mechanisms remain unclear. C_LIO_LIIn this study, we integrated physiological, biochemical, and molecular approaches to uncover the temporal patterns and light responsiveness of gene transcript and protein abundances, and the activities of enzymes involved in diurnal malate remobilisation in the obligate CAM model species Kalanchoe fedtschenkoi. C_LIO_LIVacuolar malate transport was primarily influenced by the endogenous clock and photoperiod, with KfALMT4 being a more plausible transporter candidate than KftDT. Decarboxylation of the released malate was mainly dictated by photoperiod, with light intensity playing a supplementary role. Both photoperiod and light intensity greatly affected the final processes of CAM photosynthesis i.e. CO2 refixation and pyruvate recycling, with PPDK--the last in line--being the most strictly light-regulated player at the mRNA, protein abundance and activity levels, closely matching malate dynamics. C_LIO_LICollectively, this study revealed the recycling enzyme PPDK as a potential key regulator of light-dependent diurnal deacidification in CAM leaves, rather than the vacuolar malate transport or decarboxylation processes. C_LI

plant biology↗