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Beckman, R. L.

Publications and source records attributed to Beckman, R. L..

2 recordsLinked to original sources

DksA-Dependent Stringent Stress Response Drives Virulence and Gastrointestinal Persistence of Klebsiella pneumoniae

Successful gastrointestinal colonization (GI) by bacterial pathogens requires adaptation to nutrient competition and host-derived stresses in the gut, with adaptation via the bacterial stringent stress response playing a critical role. Epidemiological data suggest that the GI tract serves as a reservoir from where K. pneumoniae can spread and cause invasive disease or transmit to another host. DksA is a conserved stringent response transcriptional regulator that was identified in an in vivo transposon mutagenesis screen as an important K. pneumoniae gut determinant. However, its role in K. pneumoniae pathogenesis and gut colonization remains uncharacterized. Here, we demonstrate that DksA is required for survival against membrane-targeting antibiotics, consistent with a role in cell envelope stress tolerance. In addition, DksA positively regulates capsule biosynthesis gene expression and hypermucoviscosity and is essential for robust biofilm formation. Using a murine model, we show that DksA functions as a determinant of GI colonization independently of the resident gut microbiota. Furthermore, we demonstrate that DksA is important for environmental survival and transmission by regulating RpoS, thereby providing a mechanistic link between the stringent stress response, environmental survival, and subsequent transmission. Together, these findings establish DksA as a central integrator of the stringent response, coordinating membrane stress resistance, virulence traits, and gastrointestinal colonization in K. pneumoniae. ImportanceK. pneumoniae, a pathobiont, is responsible for multidrug-resistant infections and poses a major threat in hospital settings as well as community-acquired invasive infections. The bacterium tightly coordinates its virulence-associated traits to adapt to diverse environmental conditions and survive; however, the regulatory mechanisms remain poorly understood. In this study, we demonstrated that the conserved stringent response regulator DksA contributes to bacterial membrane stability, thereby affecting antibiotic resistance, inherent virulence, and persistence traits of K. pneumoniae. Additionally, DksA was identified as required for gut colonization, environmental survival through dysregulation of RpoS, and transmission to a naive host. These results enhance our overall understanding of the K. pneumoniae stringent response and will provide new avenues for controlling K. pneumoniae infections.

microbiology↗

Molecular response to the non-lytic peptide bac7 (1-35) triggers disruption of Klebsiella pneumoniae biofilm

Klebsiella pneumoniae is becoming increasingly difficult to treat as multidrug-resistant (MDR) strains become more prevalent. The formation of biofilm heightens this threat by embedding bacterial cells in a polysaccharide-rich matrix that limits antibiotic penetration. Here we dissect the anti-biofilm bovine host-defense cathelicidin peptide fragment bac7 (1-35), exploring its anti-biofilm mechanism, evaluating its ability to curb dissemination of hypervirulent K. pneumoniae, and testing its breadth of activity against diverse clinical isolates. Transcriptomic profiling revealed that bac7(1-35) simultaneously compromises the bacterial membrane and inhibits ribosomal function, a dual assault that precipitates rapid biofilm collapse and blocks bacterial spread. Further, the peptide eradicated biofilms produced by the strongest MDR clinical isolates in the Multidrug-Resistant Organism Repository and Surveillance Network (MRSN) diversity panel. Although bac7 (1-35) kills bacterial cells via a cytosolic mechanism, membrane interaction profiles varied among MRSN isolates, correlating with differential peptide translocation. In a delayed-treatment murine skin-abscess model, bac7 (1-35) halted in vivo dissemination of the hypervirulent strain NTUH-K2044. Collectively, these results delineate a multifaceted mode of action for bac7 (1-35) and underscore its therapeutic promise against biofilm-associated MDR K. pneumoniae infections. Author SummaryKlebsiella pneumoniae is a top-priority pathogen for new therapies, with many strains already approaching pan-drug resistant status. Biofilm formation further complicates treatment, yet biofilm-active therapeutics have not reached the clinic, in part because we still lack a detailed understanding of how to disrupt these impenetrable structures. Antimicrobial peptides are promising candidates and have shown biofilm-disruption potential. Here we provide mechanistic insight into how a host defense peptide dismantles pre-formed K. pneumoniae biofilms. We find that the peptides dual targeting of bacterial membranes and ribosomes triggers dispersal from the biofilm state and concomitantly downregulates factors required for surface attachment and extracellular matrix production. This mechanism involves a protein that, to our knowledge, has not been characterized in K. pneumoniae. Our findings reveal a switch that can be leveraged to reprogram biofilm maintenance toward dispersal in K. pneumoniae, advancing the path to peptide-based antibiofilm therapeutics.

microbiology↗