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Biology subjects

Gulder, T.

Publications and source records attributed to Gulder, T..

2 recordsLinked to original sources

The glucocorticoid dexamethasone influences motility of the sulfate-reducing bacterium Desulfovibrio desulfuricans by targeting the filament cap protein FliD

Glucocorticoids such as dexamethasone (DXE) are first-line treatments for inflammatory bowel disease (IBD). Beyond their effects on the host immune system, accumulating evidence suggests that glucocorticoids can also influence the gut microbiota. Notably, IBD patients exhibit an increased intestinal colonization by sulfate-reducing Desulfovibrio spp. Here, we show that DXE modulates bacterial motility in the gut commensal Desulfovibrio desulfuricans through a metabolism-independent mechanism. To identify bacterial targets, we developed a DXE-derived chemical probe and performed affinity-based protein profiling, which revealed the flagellar cap protein FliD (Ddes_0530) as a principal binding partner. Structural modeling using AlphaFold3 and Boltz2 predicted DXE binding within a conserved groove of the FliD C-terminal domain. Furthermore, the tip of the flagellum of Desulfovibrio, but not that of Escherichia coli, could be fluorescently labeled with TAMRA-DXE, but not with the structurally related steroid probe TAMRA-norethiosterone, indicating that flagellar labeling is specific to DXE rather than the steroid scaffold itself. As a consequence of this interaction, transmission electron microscopy showed that DXE treatment prevented flagellation in a subpopulation and reduced flagellar length in D. desulfuricans strains ATCC 27774 and CCUG 72978, respectively. Quantitative motility tracking revealed a non-monotonic, dose-dependent modulation of swimming velocity, with peak stimulation at 10 {micro}M DXE, accompanied by straighter trajectories and enhanced net displacement. Together, these findings uncover a previously unrecognized mode of action for DXE which directly perturbs flagellar biogenesis and motility of an important gut microbiome member of IBD patients. SignificanceGlucocorticoids are widely prescribed for inflammatory conditions, yet their direct effects on gut bacteria remain largely unexplored. We demonstrate that dexamethasone, a synthetic glucocorticoid, binds to the flagellar cap protein FliD of the gut commensal Desulfovibrio desulfuricans, affecting flagellar assembly and altering motility behavior. Unlike previously characterized steroid-metabolizing bacteria such as Clostridium steroidoreducens, Desulfovibrio does not degrade dexamethasone, indicating that the observed effects result from direct drug-protein interaction. These findings establish a new paradigm for metabolism-independent drug-microbiome interactions and suggest that glucocorticoid effects on gut bacteria extend beyond enzymatic degradation pathways.

microbiology↗

Heterologous expression and optimization of fermentation conditions for recombinant ikarugamycin production

Ikarugamycin is a member of the natural product family of the polycyclic tetramate macrolactams (PoTeMs). The compound exhibits a diverse range of biological activities, including antimicrobial, antiprotozoal, anti-leukemic, and anti-inflammatory properties. In addition, it interferes with several crucial cellular functions, such as oxidized low-density lipoprotein uptake in macrophages, Nef-induced CD4 cell surface downregulation, and mechanisms of endocytosis. It is therefore used as a tool compound to study diverse biological processes. However, ikarugamycin commercial prices are very high, with up to 1300 {euro} per 1 mg, thus limiting its application. We therefore set out to develop a high-yielding recombinant production platform of ikarugamycin by screening different expression vectors, recombinant host strains, and cultivation conditions. Overall, this has led to overproduction levels of more than 100 mg/L, which, together with a straightforward purification protocol, establishes biotechnological access to affordable ikarugamycin enabling its increased use in biomedical research in the future.

bioengineering↗