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Johannessen, M.

Publications and source records attributed to Johannessen, M..

4 recordsLinked to original sources

Activity-Based Protein Profiling Identifies Klebsiella pneumoniae Serine Hydrolases with Potential Roles in Host-Pathogen Interactions

Klebsiella pneumoniae is a normal resident of the human gastro-intestinal tract and an opportunistic, critical priority pathogen that can cause a variety of severe systemic infections. Due to emerging multi-drug resistance of this pathogen, the discovery and validation of novel targets for the development of new treatment options is an urgent priority. Here, we explored the family of serine hydrolases, a highly druggable and functionally diverse enzyme family which is uncharacterized in K. pneumoniae. Using functionalized covalent fluorophosphonate inhibitors as activity-based probes we identified 10 serine hydrolases by mass spectrometry-based activity-based protein profiling, 7 of which were previously uncharacterized. Functional validation using transposon mutants deficient in either of the putative lysophospholipase PldB, esterase YjfP and patatin-like phospholipase YchK revealed severe growth defects in human colonic organoid co-culture models and reduced virulence during Galleria mellonella infection. Mutants deficient in the PldB and YjfP, but not YchK show increased susceptibility to killing by complement and the antimicrobial peptide antibiotic polymyxin B, suggesting a role in maintaining cell envelope integrity. Biochemical characterization and structural analysis of recombinant YjfP suggest this protein is a deacetylase. This study gives important insights into the molecular mechanisms underlying virulence and cell physiology of K. pneumoniae at the host-pathogen interface and it positions PldB, YjfP and YchK as potential antimicrobial or anti-virulence target candidates, inhibition of which might synergize with existing antibiotics and human immune defenses.

microbiology↗

Deciphering Staphylococcus aureus-host dynamics using dual activity-based protein profiling of ATP-interacting proteins

The utilization of ATP within cells plays a fundamental role in cellular processes that are essential for the regulation of host-pathogen dynamics and the subsequent immune response. This study focuses on ATP-binding proteins to dissect the complex interplay between Staphylococcus aureus and human cells, particularly macrophages (THP-1) and keratinocytes (HaCaT), during an intracellular infection. A snapshot of the various protein activity and function is provided using a desthiobiotin-ATP probe, which targets ATP-interacting proteins. In S. aureus, we observe enrichment in pathways required for nutrient acquisition, biosynthesis and metabolism of amino acids and energy metabolism when located inside human cells. Additionally, the direct profiling of the protein activity revealed specific adaptations of S. aureus to the keratinocytes and macrophages. Mapping the differentially activated proteins to biochemical pathways in the human cells with intracellular bacteria revealed cell-type specific adaptations to bacterial challenges where THP-1 cells prioritized immune defenses, autophagic cell death, and inflammation. In contrast, HaCaT cells emphasized barrier integrity and immune activation. We also observe bacterial modulation of host processes and metabolic shifts. These findings offer valuable insights into the dynamics of S. aureus-host cell interactions, shedding light on modulating host immune responses to S. aureus, which could involve developing immunomodulatory therapies. ImportanceThis study uses a chemoproteomics approach to target active ATP-interacting proteins and examines the dynamic proteomic interactions between S. aureus and human cell lines THP-1 and HaCaT. It uncovers the distinct responses of macrophages and keratinocytes during bacterial infection. S. aureus demonstrated a tailored response to the intracellular environment of each cell type and adaptation during exposure to professional and non-professional phagocytes. It also highlights strategies employed by S. aureus to persist within host cells. This study offers significant insights into the human cell response to S. aureus infection, illuminating the complex proteomic shifts that underlie the defense mechanisms of macrophages and keratinocytes. Notably, the study underscores the nuanced interplay between the hosts metabolic reprogramming and immune strategy, suggesting potential therapeutic targets for enhancing host defense and inhibiting bacterial survival. The findings enhance our understanding of host-pathogen interactions and can inform the development of targeted therapies against S. aureus infections. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=60 SRC="FIGDIR/small/578939v1_ufig1.gif" ALT="Figure 1"> View larger version (13K): org.highwire.dtl.DTLVardef@79513borg.highwire.dtl.DTLVardef@c3fee2org.highwire.dtl.DTLVardef@192e144org.highwire.dtl.DTLVardef@36239_HPS_FORMAT_FIGEXP M_FIG Graphical Abstract C_FIG

molecular biology↗

High-throughput single-cell phenotypic profiling and backtracing exposes and predicts clinically relevant subpopulations in isogenic Staphylococcus aureus communities.

Isogenic bacterial cell populations are phenotypically heterogenous and may include subpopulations of antibiotic tolerant or heteroresistant cells. The reversible nature of these phenotypes and lack of biomarkers to differentiate functionally different, but morphologically identical cells is a challenge for research and clinical detection. To overcome this, we present Cellular Phenotypic Profiling and backTracing (CPPT), a flexible fluorescence-activated cell sorting platform, that uses optical probes to visualize and quantify cellular traits and connects the resulting phenotypic profile with a cells experimentally determined fate in single cell-derived growth and antibiotic susceptibility analysis. By applying CPPT on Staphylococcus aureus populations we recorded phenotypic signatures for dormant cells, exposed microanatomy-independent bimodal growth patterns in colony-derived cells, and revealed different culturability of single cells on solid compared to liquid media. We demonstrate that vancomycin-bodipyFL marks cellular subpopulations with increased likelihood to survive antibiotic exposure, showcasing the value of CPPT for discovery of clinically relevant biomarkers.

microbiology↗

Comprehensive Virulence Profiling and Evolutionary Analysis of Specificity Determinants in Staphylococcus aureus Two-Component Systems

In the Staphylococcus aureus genome, a set of highly conserved two-component systems (TCSs) composed of histidine kinases (HKs) with their cognate response regulators (RRs) sense and respond to environmental stimuli, which drive the adaptation of the bacteria. This study investigates the complex interplay between TCSs in S. aureus USA300, a predominant Methicillin-Resistant S. aureus (MRSA) strain, revealing shared and unique virulence regulatory pathways and genetic variations mediating signal specificity within TCSs. Using TCS-related mutants from the Nebraska Transposon Mutant Library, we analyzed the effects of inactivated TCS HKs and RRs on the production of various virulence factors, in vitro infection abilities, and adhesion assays. We found that the TCSs influence on virulence determinants was not associated with their phylogenetic relationship, indicating divergent functional evolution. Using the cocrystalized structure of the DesK-DesR from B. subtilis and modelled structures of the 4 NarL TCSs in S. aureus, we identified interacting residues, revealing specificity determinants and conservation within the same TCS, even from different strain backgrounds. The interacting residues were highly conserved within strains but varied between species due to selection pressures and coevolution of cognate pairs. This study unveils the complex interplay and divergent functional evolution of TCSs, highlighting their potential for future experimental exploration of phosphotransfer between cognate and non-cognate recombinant HK and RRs. IMPORTANCEGiven the widespread conservation of Two-Component Systems (TCSs) in bacteria and their pivotal role in regulating metabolic and virulence pathways, they present a compelling target for anti-microbial agents--especially in the face of rising multi-drug resistant infections. Harnessing TCSs therapeutically necessitates a profound understanding of their evolutionary trajectory in signal transduction, as this underlies their unique or shared virulence regulatory pathways. Such insights are critical for effectively targeting TCS components, ensuring an optimized impact on bacterial virulence and mitigating the risk of resistance emergence via the evolution of alternative pathways. Our research offers an in-depth exploration of virulence determinants controlled by TCSs in S. aureus, shedding light on the evolving specificity determinants that orchestrate interactions between their cognate pairs.

microbiology↗