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Updated: Jan 7, 2026

Visualization of Bacterial Toxin Induced Responses Using Live Cell Fluorescence Microscopy
Published on: October 1, 2012
Bacterial Toxin Exploits Host Membrane Phospholipid as a Receptor for Binding, Entry, and Cytopathogenicity
Alejandra M Kirkpatrick1, Thirumalai R Kannan1
1Department of Microbiology, Immunology and Molecular Genetics, The University of Texas Health Science Center at San Antonio, San Antonio, Texas, USA.
None:
Mycoplasma pneumoniae is a leading cause of bacterial community-acquired pneumonia, responsible for severe respiratory and extrapulmonary diseases in children and adults. The Community Acquired Respiratory Distress Syndrome (CARDS) toxin is a key virulence factor that exerts ADP-ribosylating and vacuolating activities on host cells, recapitulating the inflammatory and histopathological damage seen in infected airways. Although the host proteins annexin-A2 (AnxA2) and surfactant protein-A were previously identified as toxin receptors, their absence did not abrogate CARDS toxin activity. Intriguingly, our subsequent work identified an interaction between CARDS toxin and the ubiquitous membrane phospholipids sphingomyelin (SM) and phosphatidylcholine (PC). This study investigated whether CARDS toxin uses these lipids as functional cell surface receptors. Using enzyme-linked immunosorbent assays, we demonstrated that the carboxy region of CARDS toxin binds to SM and PC in a dose-dependent manner, exhibiting higher affinity for SM. Depletion of SM from airway epithelial cell surface significantly reduced CARDS toxin binding, internalization and retrograde transport, as shown by immunoblot, pull-down, immunofluorescence, and live-cell imaging. Furthermore, SM depletion markedly decreased toxin-induced vacuolation and its stability, a phenotype rescued by adding exogenous SM. Notably, combining SM depletion with AnxA2 suppression nearly abolished toxin binding, entry, and subsequent vacuolation. These findings establish that CARDS toxin utilizes SM as a functional receptor to mediate its activity, highlighting a critical lipid-dependent mechanism for host cell targeting.
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