Abstract
Erythromycin was recovered in high yield after incubation with gram-negative bacteria. The cell-free protein-synthesizing preparation from gram-negative bacteria is equally as susceptible to the antibiotic as is that from gram-positive bacteria. Thus, neither destruction of erythromycin nor the absence of the step susceptible to the antibiotic plays an important role in the resistance mechanism of gram-negative bacteria. A 100-fold difference in accumulation of erythromycin between gram-positive and gram-negative bacteria was observed. This alone explains the resistance of gram-negative bacteria to erythromycin. Furthermore, data showed that the inhibition of growth is closely related to the accumulation of erythromycin. The concentration of intracellular erythromycin in gram-positive bacteria was found to be 44- to 90-fold greater than that of the extracellular medium. However, the antibiotic did not accumulate on the cell walls, nor was the accumulation energy-dependent. It is proposed that it takes place by the binding of erythromycin to the bacterial ribosomes, forming a very stable complex. The dissociation constants of erythromycin-Staphylococcus aureus complex and erythromycin-Bacillus subtilis complex were determined to be 1.1 x 10(-7) and 3.4 x 11(-7)m, respectively.
MeSH Terms
Azides/pharmacology
Bacillus subtilis/drug effects
Carbon Isotopes
Cell Wall/metabolism
Cyanides/pharmacology
Dinitrophenols/pharmacology
Drug Resistance, Microbial
Erythromycin/metabolism,pharmacology
Escherichia coli/drug effects
Hot Temperature
Peptide Biosynthesis
Proteus/drug effects
Ribosomes/metabolism
Staphylococcus/drug effects
Chemicals
Azides
Carbon Isotopes
Cyanides
Dinitrophenols
Erythromycin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Mao J C
Putterman M
References (13)
13 references, click to expand
-
Demethylation of erythromycins by rabbit tissues in vitro.
Biochem Pharmacol. 1965 Jul;14(7):1049-58
PMID: 5854735
-
Binding of erythromycin to Escherichia coli ribosomes.
Biochim Biophys Acta. 1966 Jan 18;114(1):204-6
PMID: 5327844
-
Formation of C14-erythromycin-ribosome complex.
J Biochem. 1966 Jun;59(6):632-4
PMID: 5336207
-
Sensitivity and resistance to erythromycin in Bacillus subtilis 168: the ribosomal binding of erythromycin and chloramphenicol.
Biochim Biophys Acta. 1966 Aug 17;123(2):438-40
PMID: 4961167
-
Protein synthesis in a cell-free extract from Staphylococcus aureus.
J Bacteriol. 1967 Jul;94(1):80-6
PMID: 6028003
-
The stoichiometry of erythromycin binding to ribosomal particles of Staphylococcus aureus.
Biochem Pharmacol. 1967 Dec;16(12):2441-3
PMID: 6075404
-
The antibacterial action of erythromycin.
Proc Soc Exp Biol Med. 1952 Oct;81(1):175-83
PMID: 13047351
-
Accumulation of label from C14-streptomycin by Escherichia coli.
J Bacteriol. 1962 Jun;83:1193-201
PMID: 14450179
-
Susceptibility of Proteus mirabilis and its stable L-forms to erythromycin and other macrolides.
Nature. 1962 Oct 13;196:195-6
PMID: 13993473
-
ERYTHROMYCIN: MODE OF ACTION.
Science. 1964 Mar 27;143(3613):1445-6
PMID: 14107448
-
SENSITIVITY OF COCCAL AND L FORMS OF STAPHYLOCOCCUS AUREUS TO FIVE ANTIBIOTICS.
J Bacteriol. 1964 Sep;88:630-2
PMID: 14208499
-
EFFECT OF ERYTHROMYCIN ON PROTEIN BIOSYNTHESIS IN BACILLUS SUBTILIS.
Antimicrob Agents Chemother (Bethesda). 1963;161:395-401
PMID: 14274930
-
Drug resistance and mechanisms for its development.
Br Med Bull. 1960 Jan;16:16-22
PMID: 14433883