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Vriesendorp, B.

Publications and source records attributed to Vriesendorp, B..

3 recordsLinked to original sources

Divergent spontaneous antibiotic-resistance evolution confers reciprocal and exploitable collateral sensitivity effects

The global rise of antibiotic-resistant pathogens has outpaced the development of new antibiotics, prompting the urgent need for alternative treatment strategies. One such approach is to leverage collateral sensitivity (CS), where resistance to one antibiotic increases susceptibility to another. However, the clinical implementation of CS-based therapies depends on the consistency of these responses, which is challenged by variable resistance mutations and the dynamics of resistant strains during infection. Here, we combined experiments and mathematical models to assess the consistency and consequences of CS responses in the Gram-positive pathogen Streptococcus pneumoniae following the de novo acquisition of resistance to five commonly used antibiotics. We found that many collateral responses were unpredictable and inconsistent between different resistance mutations. However, for two antibiotic pairs, we identified consistent unidirectional (RIF [->] FUS) and bidirectional (LNZ {leftrightarrow} FUS) CS interactions, despite the divergent evolutionary trajectories of resistant strains, as revealed by whole-genome sequencing. To evaluate if CS for these combinations can be exploited to design dosing strategies to eradicate S. pneumoniae infections while suppressing resistance, we developed a mathematical stochastic pharmacokinetic-pharmacodynamic (PK-PD) model, which integrated our experimentally derived PD parameters with existing clinical PK models. Our model-based analyses confirmed the superiority of these antibiotic combinations over monotherapy and showed that their efficacy depends on the presence of CS interactions between the administered antibiotics. In summary, our study demonstrates how consistent CS interactions can be leveraged to inform treatment strategies, laying the groundwork for CS-guided therapies to preserve antibiotic efficacy.

microbiology↗

Defining the minimal structural requirements of DivIVA in filamentous Actinomycetota

The morphogenetic protein DivIVA exhibits diverse functions across bacterial phyla. In Bacillota, DivIVA is primarily involved in cell division, whereas in Actinomycetota, it plays a central role in coordinating polar growth. Due to its essential nature, gaining insight into DivIVA function is challenging. Here we report on the functionality of truncated DivIVA proteins, using a unique divIVA deletion mutant created in cell wall-deficient Kitasatospora viridifaciens L-forms. DivIVA comprises an N-terminal domain, two coiled-coil regions separated by an intercoil linker, and a C-terminal domain. Deleting either the intercoil or the C-terminal region impacted branching dynamics. We also created a minimized variant wherein both were deleted simultaneously, containing the N-terminus and fused coiled-coils, resembling DivIVA from unicellular bacteria. Expression of this minimized variant resulted in severe growth defects. Cells exhibited a strong increase in hyphal width and cell wall thickness, accompanied by frequent tip bursting. Finally, we successfully introduced chimeric DivIVA from the unicellular actinobacterium Mycolicibacterium smegmatis with an N-terminal domain of Kitasatospora viridifaciens, demonstrating functional conservation within the phylum. In contrast, a chimeric DivIVA from Bacillus subtilis could not support growth, underscoring that polar growth is encoded within Actinomycetota-specific amino acid motifs encoded in the first and second coiled-coil. These findings enhance our understanding of the structure-function relationship for DivIVA and present new opportunities to study polar growth. ImpactDivIVA is essential for polar growth in Actinomycetota. In Streptomycetaceae, this membrane-binding protein localizes at growing hyphal tips and along lateral hyphal walls where new branches emerge. Due to its essentiality, the structural relationship of DivIVA between unicellular and multicellular species remains elusive. Using a Kitasatospora viridifaciens L-form divIVA deletion mutant, we expressed truncated DivIVA variants to identify essential regions. Deleting two large unstructured domains produced a minimized variant containing the N-terminus and fused coiled-coils, resembling DivIVA from unicellular bacteria. This strongly impacted morphogenesis, increasing hyphal width and cell wall thickness, and leading to hyphal tip bursting. Finally, we successfully substituted DivIVA of K. viridifaciens with that from Mycolicibacterium smegmatis. Furthermore, Bacillus subtilis DivIVA could not facilitate reversion, showing that polar growth depends on amino acid motifs unique to Actinomycetota. These findings enhance our understanding of the structure-function relationship of DivIVA and offer new opportunities to study polar growth.

microbiology↗

Using BONCAT To Dissect The Proteome Of S. aureus Persisters

Bacterial persisters are a subpopulation of cells that exhibit a transient non-susceptible phenotype in the presence of bactericidal antibiotic concentrations. This phenotype can lead to the survival and regrowth of bacteria after treatment, resulting in relapse of infections. As such, it is also a contributing factor to antibacterial resistance. Multiple processes are believed to cause persister formation, yet identifying the proteins expressed during the induction of the persister state has been difficult, because the persister-state is rare, transient and does not lead to genetic changes. In this study, we used Bio-Orthogonal Non-Canonical Amino Acid Tagging (BONCAT) to label, and retrieve, the proteome expressed during the persister state for different strains of methicillin-resistant Staphylococcus aureus. After incubating antibiotic-exposed bacteria with the methionine ortholog L-azidohomoalanine to label the proteins of persister cells, we retrieved labeled proteins using click chemistry-pulldown methodology. Analysis of the retrieved proteome fraction of Methicillin resistant Staphylococcus aureus (MRSA) and Vancomycin resistant Staphylococcus aureus (VRSA) under challenge with {beta}-lactam and fluoroquinolone antibiotics with Label Free Quantification - Liquid chromatography mass spectrometry (LFQ-LCMS) based proteomics reveals the upregulation of proteins involved in stringent response, cell wall biosynthesis, purine metabolism, ppGpp biosynthesis, two component systems (TCS), lipid metabolism, ABC transporters, D-alanine biosynthesis and L-proline degradation. Conversely, we observed a decline of proteins associated with amino acid biosynthesis and degradation, protein biosynthesis, protein modification, and carbohydrate metabolism, among others. These findings indicate that modification of translational activity in persister cells enables bacterial cells to induce an active defense to survive antibiotic pressure.

microbiology↗