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Bacterial surface receptors on Staphylococcus aureus, Klebsiella pneumoniae, and Pseudomonas aeruginosa

Molecular classification
Receptor, Enzyme, Transporter, Other
01

Overview

Bacterial surface receptors on Staphylococcus aureus, Klebsiella pneumoniae, and Pseudomonas aeruginosa encompass a diverse array of proteins, polysaccharides, and lipids that serve as the primary interface between these pathogens and their environment [1, 6]. These structures, including penicillin-binding proteins (PBPs), outer membrane porins (e.g., OmpK36), and siderophore receptors (e.g., FpvA), are essential for nutrient acquisition, cell wall integrity, and environmental sensing [5, 8]. In clinical settings, these receptors are critical virulence factors that facilitate host cell adhesion and biofilm formation, contributing to the high pathogenicity of these ESKAPE organisms [2, 3]. They also play a central role in antibiotic resistance, either by limiting drug entry through porin loss or by actively expelling drugs via efflux pump components like OprM [1, 8]. These surface receptors are the primary targets for bacteriophage therapy, where viral receptor-binding proteins (RBPs) recognize specific motifs such as Type IV pili or wall teichoic acids to initiate infection [4, 6]. Therapeutic strategies often exploit these receptors to create evolutionary trade-offs; for instance, phages targeting efflux pump receptors can select for bacterial mutants that are more sensitive to traditional antibiotics [1, 5]. Additionally, specialized antibiotics like cefiderocol utilize siderophore receptors for active transport into the bacterial cell, bypassing traditional resistance mechanisms [8]. Understanding the structural diversity and mutational landscape of these receptors is vital for developing next-generation antimicrobials and personalized phage cocktails to combat multidrug-resistant infections [4, 7].

Other names
ESKAPE pathogen surface receptorsPhage receptorsBacterial cell surface targets
02

Mechanism of action

Bacteriophages bind to these receptors to initiate viral entry and subsequent bacterial lysis; certain antibiotics utilize these receptors for active transport into the cell or as binding sites to inhibit cell wall synthesis.

03

Biological functions

AdhesionNutrient transportCell wall organizationEffluxSignal transduction
04

Disease associations

Infection
05

Safety considerations

Rapid evolution of receptor mutations leading to resistancePotential for pro-inflammatory response during mass bacterial lysis (endotoxin release)Narrow host range of specific phage-receptor interactions
06

Interacting drugs

Bacteriophages

5 more in the full profile.

07

Biomarkers

Bacterial genotype (e.g., presence of specific Omp or PBP genes)Phage susceptibility profileCapsule serotype

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