Bismuth-mediated disruption of the glycocalyx- cell wall of Helicobacter pylori:ultrastructural evidence for a mechanism of action for bismuth salts
Author(s) -
Charles W. Stratton,
Ronald R. Warner,
P E Coudron,
N A Lilly
Publication year - 1999
Publication title -
journal of antimicrobial chemotherapy
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.124
H-Index - 194
eISSN - 1460-2091
pISSN - 0305-7453
DOI - 10.1093/jac/43.5.659
Subject(s) - bismuth , divalent , helicobacter pylori , chemistry , cytoplasm , cell wall , lysis , mechanism of action , biophysics , transmission electron microscopy , biochemistry , microbiology and biotechnology , biology , materials science , in vitro , nanotechnology , organic chemistry , genetics
The mechanism of bismuth's bactericidal activity against Helicobacter pylori was investigated using transmission electron microscopy (TEM) and analytical electron microscopy (AEM); time-kill kinetic methods evaluated the effect of excess divalent cations. TEM analysis of untreated H. pylori revealed a normal morphology. In contrast, H. pylori exposed to bismuth salts had swollen, distorted cells with membrane-cell wall blebbing and a cytoplasm containing electron-dense, sometimes crystalline aggregates. By AEM, swollen cells contained bismuth at the cell periphery, whereas bacillary forms contained cytoplasmic bismuth localizations. Time-kill studies showed that the bactericidal activity of bismuth could be prevented by pretreatment with divalent cations. The effects of bismuth salts on the glycocalyces-cell walls of H. pylori with reversal of bactericidal activity by divalent cations are identical to those produced by other polycationic agents on various gram-negative bacilli. We conclude that disruption of the glycocalyces-cell walls of H. pylori is one mechanism of action for bismuth salts.
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