Abstract
The correlation of bacterial lipid composition with antibiotic resistance was investigated with particular emphasis on those organisms in which resistance may be related to membrane or envelope structure or function, as in resistance to tetracyclines and polymyxin. Chloroform-methanol-extractable lipids, phosphatidyl ethanolamine fractions, and both fatty acids of these lipid fractions and total fatty acids were studied by using thin-layer chromatography, gas chromatography, and infrared spectroscopy. Consistent quantitative differences were found between the fatty acid compositions of sensitive and resistant strains. Most notable was the fact that, in gram-negative organisms, resistant strains showed decreases in cyclopropane acids as compared with sensitive strains. These changes were found to be inherent in the strains and not due to growth stage or culture age. No significant qualitative differences were noted. In contrast, no such variation in fatty acid content was observed in penicillin-sensitive and resistant strains of gram-positive cocci. As significant alterations of fatty acid composition were noted in gram-negative strains resistant to antibiotics, we suggest that resistance is correlated to membrane or envelope lipid composition.
MeSH Terms
Anti-Bacterial Agents/pharmacology
Chlortetracycline/pharmacology
Chromatography, Gas
Chromatography, Thin Layer
Densitometry
Escherichia coli/analysis,drug effects
Fatty Acids/analysis
Indicators and Reagents
Infrared Rays
Klebsiella/analysis,drug effects
Lipids/analysis
Microbial Sensitivity Tests
Penicillin G/pharmacology
Penicillin Resistance
Polymyxins/pharmacology
Spectrophotometry
Staphylococcus/analysis,drug effects
Chemicals
Anti-Bacterial Agents
Fatty Acids
Indicators and Reagents
Lipids
Polymyxins
Penicillin G
Chlortetracycline
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Dunnick J K
O'Leary W M
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27 references, click to expand
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