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Journal Article | Research Support, Non-U.S. Gov't

Incidence and mechanisms of resistance to the combination of amoxicillin and clavulanic acid in Escherichia coli.

P Stapleton, P J Wu, A King, K Shannon, G French, I Phillips
P Stapleton
Department of Microbiology, UMDS, London, United Kingdom.
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P J Wu
Department of Microbiology, UMDS, London, United Kingdom.
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A King
Department of Microbiology, UMDS, London, United Kingdom.
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K Shannon
Department of Microbiology, UMDS, London, United Kingdom.
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G French
Department of Microbiology, UMDS, London, United Kingdom.
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I Phillips
Department of Microbiology, UMDS, London, United Kingdom.
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DOI: 10.1128/AAC.39.11.2478
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This article has a correction. Please see:

  • Incidence and Mechanisms of Resistance to the Combination of Amoxicillin and Clavulanic Acid in Escherichia coli
    - October 01, 1998

ABSTRACT

Among Escherichia coli organisms isolated at St. Thomas's Hospital during the years 1990 to 1994, the frequency of resistance to amoxicillin-clavulanic acid (tested by disk diffusion in a ratio of 2:1) remained constant at about 5% of patient isolates (10 to 15% of the 41 to 45% that were amoxicillin resistant). Mechanisms of increased resistance were determined for 72 consecutively collected such amoxicillin-clavulanic acid-resistant isolates. MICs of the combination were 16-8 micrograms/ml for 51 (71%) of these and > or = 32-16 micrograms/ml for the remainder. The predominant mechanism was hyperproduction of enzymes isoelectrically cofocusing with TEM-1 (beta-lactamase activities, > 200 nmol of nitrocefin hydrolyzed per min per mg of protein) which was found in 44 isolates (61%); two isolates produced smaller amounts (approximately 150 nmol/min/mg) of such enzymes, and two isolates hyperproduced enzymes cofocusing with TEM-2. Eleven isolates produced enzymes cofocusing with OXA-1 beta-lactamase, which has previously been associated with resistance to amoxicillin-clavulanic acid. Ten isolates produced increased amounts of chromosomal beta-lactamase, and four of these additionally produced TEM-1 or TEM-2. Three isolates produced inhibitor-resistant TEM-group enzymes. In one of the enzymes (pI, 5.4), the amino acid sequence change was Met-67-->Val, and thus the enzyme is identical to TEM-34. Another (pI, 5.4) had the substitution Met-67-->Ile and is identical to IRT-I67, which we propose now be given the designation TEM-40. The third (pI, 5.2) had the substitution Arg-241-->Thr; this enzyme has not been reported previously and should be called TEM-41. The rarity and diversity of inhibitor-resistant TEM-group enzymes suggest that they are the result of spontaneous mutations that have not yet spread.

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Incidence and mechanisms of resistance to the combination of amoxicillin and clavulanic acid in Escherichia coli.
P Stapleton, P J Wu, A King, K Shannon, G French, I Phillips
Antimicrobial Agents and Chemotherapy Nov 1995, 39 (11) 2478-2483; DOI: 10.1128/AAC.39.11.2478

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Incidence and mechanisms of resistance to the combination of amoxicillin and clavulanic acid in Escherichia coli.
P Stapleton, P J Wu, A King, K Shannon, G French, I Phillips
Antimicrobial Agents and Chemotherapy Nov 1995, 39 (11) 2478-2483; DOI: 10.1128/AAC.39.11.2478
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