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ORIGINAL RESEARCH article

Front. Microbiol., 14 February 2014
Sec. Antimicrobials, Resistance and Chemotherapy
This article is part of the Research Topic Emerging antimicrobial resistance mechanisms in animal and zoonotic pathogens View all 21 articles

Emergence of Escherichia coli producing extended-spectrum AmpC β-lactamases (ESAC) in animals

  • Agence Nationale de Sécurité Sanitaire, Unité Antibiorésistance et Virulence Bactériennes, Lyon, France

In both humans and animals, the spread of Extended-Spectrum β-Lactamases (ESBL)/AmpC producers has become a major issue, particularly due to the plasmidic dissemination of most of these genes. Besides, over-expression of the chromosomal ampC gene was largely reported in human and animal Enterobacteriaceae and, more recently, modifications within the coding region of the ampC gene [encoding Extended-spectrum AmpC β-lactamases (ESACs)] were shown to be responsible for an hydrolysis spectrum expanded to oxyiminocephalosporins in humans. In this study, among 6765 cattle E. coli isolates, 28 (0.37%) isolates harboring a reduced susceptibility to cefepime (MICs ranging from 0.5 to 12 μg/ml) were investigated as presumptive ESACs producers. Highly conserved mutations in the promoter/attenuator region were identified at positions −88, −82, −42, −18, −1, and +58. Using sequencing and cloning experiments, amino acid substitutions of the AmpC beta-lactamase were characterized at positions 287 (mostly S287N, but also S287C), 292 (A292V) and 296 (H296P), similarly to data reported in humans. Interestingly, those cattle ESAC-producing E. coli isolates predominantly belonged to the Clonal Complex (CC) 23, thus mirroring what has been described in humans. The driving forces for the selection of ESACs in animals are unknown, and their prevalence needs to be further investigated in the different animal sectors. Considering the over-representation of ESAC-producing E. coli belonging to CC23 in both humans and animals, exchanges of ESAC producers between the two populations may have occurred as well. To our best knowledge, this study is the first report of ESACs in animals worldwide, which should be considered an emerging mechanism contributing to the resistance to extended-spectrum cephalosporins in the animal population.

Introduction

Escherichia coli is both a commensal and an opportunistic pathogen of the digestive tract of mammals. E. coli is also responsible for many extra-intestinal infections (ExPEC), such as those of the urinary tract (Pitout, 2012). Concomitantly, the spread of resistances to extended-spectrum cephalosporins (ESCs) used in human and veterinary medicine causes major therapeutic challenges worldwide (Naseer and Sundsfjord, 2011). Indeed, in E. coli, the vast dissemination of Extended-Spectrum β-Lactamases (ESBLs) is a concern, in particular due to the broad success of the CTX-M enzymes. ESBL genes are mostly plasmid-mediated and this obviously facilitates their dissemination amongst bacteria (Carattoli, 2008). In addition, plasmidic class C beta-lactamases (AmpCs), such as the CMY-2 enzyme, also confer resistance to those last-generations antibiotics and disseminate efficiently in Enterobacteriaceae. In certain countries, a significant prevalence of CMY-2 producers in animals has been reported (Mulvey et al., 2009).

Numerous Enterobacteriaceae naturally produce a chromosome-encoded AmpC cephalosporinase. In E. coli, this enzyme is usually expressed at very low levels, as a result of a weak promoter and a transcriptional attenuator preceeding the ampC gene. Nevertheless, constitutive over-expression of the chromosomal ampC gene was largely reported in clinical isolates. This was attributed to specific spontaneous mutations in the promoter (which creates close homologies with the E. coli perfect consensus sequence) or the attenuator (which destabilizes the mRNA hairpin structure) of the ampC gene. Consequently, both mechanisms confer resistance to narrow-spectrum cephalosporins. In human medicine, oxyminocephalosporins, such as cefepime and cefpirome, remain usually active against over-expressed AmpC-producing Enterobacteriaceae, thanks to their rapid penetration through the outer membrane and poor degradation by AmpC beta-lactamases.

More recently, nucleotides substitutions within the coding region of the ampC gene were shown to be responsible for an expanded hydrolysis spectrum of AmpC enzymes to oxyiminocephalosporins (Mammeri et al., 2004a, 2006). Amino acid deletions or insertions (Doi et al., 2004; Mammeri et al., 2007) of the cephalosporinase also broaden the hydrolysis spectrum. Those so-called Extended-Spectrum AmpC β-lactamases (ESACs) were not only reported in E. coli, but also in other Enterobacteriaceae, such as Enterobacter cloacae (Crichlow et al., 1999; Barnaud et al., 2001; Vakulenko and Golemi, 2002), Enterobacter aerogenes (Barnaud et al., 2004), Citrobacter freundii (Ahmed and Shimamoto, 2008) or Serratia marcescens (Matsumura et al., 1998; Raimondi et al., 2001; Mammeri et al., 2004b; Hidri et al., 2005), and even in Pseudomonas aeruginosa and Acinetobacter baumanii (Rodriguez-Martinez et al., 2009, 2010). ESACs were considered an emerging mechanism of resistance to beta-lactams and their prevalence was estimated around 0.2%, almost identical to that of plasmidic cephalosporinases (Mammeri et al., 2008). Among the modifications of the ampC gene in ESAC-producing E. coli, certain nucleotides substitutions were more frequently identified, such as the S287N replacement. Other replacements were found in the coding sequence of plasmid-borne AmpCs (Kim et al., 2006), which also contribute to the extension of their hydrolysis spectrum. Finally, ESAC E. coli producers were predominantly found to belong to the Clonal Complex (CC) 23 (Cremet et al., 2010), and this raises the question on the selection scheme of those isolates.

To date, ESACs were reported in human isolates only. The purpose of this study was thus to detect and characterize the very first ESAC producers in animals worldwide.

Materials and Methods

Bacterial Isolates

A total of 6765 non-replicate E. coli isolates collected from cattle between February 2005 and December 2010 in France were included in this study. They were mostly recovered from fecal samples and from diseased animals (n = 6158), in particular from calves severely affected with gastro-enteritidis. Those isolates were recovered through the Resapath, the long-term surveillance network for antimicrobial resistance in pathogenic bacteria in France (www.resapath.anses.fr). An additional set of E. coli isolates (n = 607) collected from healthy French cattle (carriage) was also included. These latter isolates were recovered during a unique sampling program at slaughterhouse in 2006–2007. All isolates originated from various districts throughout the country and, when originating from the same district, came from different and widely distant farms. As the definition of AmpC over-producers may vary among studies (in particular with regard to resistance or not to expanded-spectrum cephalosporins in line with the strength of the ampC promoter), inclusion criteria for AmpC over-production were defined as follows, i.e., resistance to amoxicillin and amoxicillin-clavulanic acid, resistance to narrow-spectrum cephalosporins, reduced susceptibility to cefoxitin [diameter <22 mm, using the criteria of the Antibiogram Committee of the French Society for Microbiology (CA-SFM); (www.sfm-microbiologie.fr)] and resistance to ceftazidime (MIC ≥6 μg/ml) with a negative double-disk synergy test. For presumptive ESAC production, a reduced susceptibility to cefepime (MIC ≥0.5 μg/ml) was further added as an inclusion criterion.

Antimicrobial Susceptibility Testing

Resistance to beta-lactams and non-beta-lactams was determined by the disc diffusion method according to the guidelines of the CA-SFM. E. coli ATCC 25922 was used as the quality control strain. The inhibitory effect of cloxacillin on AmpC production was observed on plates supplemented with 200 mg/L cloxacillin (AES Chemunex, Bruz, France). MICs to cefoxitin, ceftazidime, cefotaxime, and cefepime were determined by E-test (BioMérieux, Marcy l'Etoile, France) on all presumptive ESACs, and MICs to cefoxitin, ceftazidime, cefepime, and imipenem were also determined by E-test on the recombinant E. coli clones. As E-tests were not available for ceftiofur, MICs to ceftiofur were determined by broth dilution method on the recombinant E. coli clones.

Phylogroup Analysis and Molecular Typing of E. coli Isolates

All E. coli isolates with reduced susceptibility to cefepime were assigned to a phylogenetic group (A, B1, B2, or D) using the PCR described by Clermont et al. (2000). Genetic relatedness of these isolates was determined by Pulse-Field Gel Electrophoresis (PFGE) after digestion with the BlnI restriction enzyme. Multi-Locus Sequence Typing was performed according to the scheme described on the E. coli MLST website (http://mlst.ucc.ie/mlst/dbs/Ecoli).

Characterization and Sequence Analysis of the β-Lactamase and ampC Genes

The blaSHV, blaTEM, blaOXA, and blaCTX−M genes were searched by PCR as previously described (Shibata et al., 2006; Dierikx et al., 2010). The plasmidic AmpC blaCMY−2 gene was sought using previously published primers (Mammeri et al., 2010). Chromosomal ampC promoter mutations were detected by PCR and sequencing of a 271 bp amplicon encompassing the −35 box, the −10 box and the attenuator (Caroff et al., 2000). The entire ampC gene of E. coli including its own promoter sequence was analyzed by PCR and sequencing using the Int-B2 and Int-H1 primers (Mammeri et al., 2006).

Cloning of the ampC Genes

The coding region (without the promoter) of ampC genes from E. coli with a reduced susceptibility to cefepime was amplified with primers Int-B1 and Int-HN, as previously described (Mammeri et al., 2006). These 1120 bp products were cloned into pCR BluntII TOPO (Invitrogen) and the recombinant plasmids were transformed into E. coli strain TOP10. Transformants were selected on plates containing kanamycin (50 μg/ml) and ceftazidime (1 μg/ml). The orientation of the insert was confirmed by PCR with the SP6 and T7 primers in order to only keep transformants with the ampC gene under the transcriptional control of the lacZ promoter.

Results

Prevalence of Presumptive ESAC Producers

Amongst the 6765 E. coli isolates studied, a total of 80 isolates (1.18%) met the criteria of AmpC over-production, of which 71 were clinical E. coli isolates (diarrheic calves) and 9 from healthy animals (carriage). Of them, 28 E. coli isolates harbored an additional reduced susceptibility to cefepime (MICs ranging from 0.5 to 12 μg/ml) and were investigated as presumptive ESACs producers (Table 1). MICs for ceftazidime for those 28 isolates ranged from 6 to 96 μg/ml, without a positive synergy test. Twenty-three presumptive ESACs producers (23/28, 82.1%) were from diseased cattle and 5 (5/28, 17.9%) were from healthy ones. None of the 28 E. coli had a plasmid-mediated blaCMY gene, whereas 10 had a blaTEM −1 gene, 3 a blaOXA−1 gene, and 2 a blaCTX−M−1 gene. The 28 cattle were from different geographic origin in France, and E. coli were genetically unrelated (using PFGE, Table 1). However, most of them (18/28, 64.2%, Table 1) were of sequence type (ST) 88 belonging to the CC23. ST783 and ST1615 were also found four times each, respectively.

TABLE 1
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Table 1. Characteristics of the 28 E. coli strains presenting a reduced susceptibility to cefepime.

Mutations in the ampC Promoter/Attenuator and in the ampC Gene

Compared with the E. coli ATCC 25922, sequencing of the ampC promoter revealed highly conserved mutations at position −88, −82, −42, −18, −1, and +58. The number of nucleotides between the novel −35 and −10 sequences was 17 bp in all isolates. Mutations in the ampC gene attenuator (from +17 to +37) were frequent, particularly at position +20, but also at +23 or +34 (Table 1). Nucleotides deletion or insertion (at positions +1 or +33, respectively) were occasionally identified. Full sequencing of the ampC gene showed that amino acid substitutions of the AmpC beta-lactamase were mainly detected inside or near the H-10 helix (Figure 1) at positions 287 (n = 16; mostly S287N, but also S287C), 292 (n = 2, A292V) and 296 (n = 8; H296P), but also outside this hot spot at positions 89 (n = 1, A89T), 194 (n = 1, P194A), 215 (n = 4; A215V), 220 (n = 1; A220T), and 232 (n = 1, R232C) (Table 1 and Figure 1). The majority of the isolates presented one mutation in the coding sequence (n = 23), but three isolates presented two mutations and one isolate even presented four of them. Finally, one isolate which additionally harbored a CTX-M enzyme presented no mutation of the ampC gene compared the control.

FIGURE 1
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Figure 1. Amino acids alignments of the ESAC β-lactamases AmpC EC2 is a published narrow-spectrum cephalosporinase that was included as a reference strain. Point mutations are marked with a star. The two loops (Ω and R2) are highlighted in gray. Helix H-9, H-10, and H-11 are boxed.

Characterization of the ampC Recombinant E. coli Clones

A subset of 7 E. coli isolates representative of the various amino acid substitutions found alone or in combination (A215V, A220T, S287N, S287C, A292V, H296P) and one control (15829, strain susceptible to cefepime) were chosen for cloning experiments (Table 2). PCR products of 1120 bp corresponding to the ampC coding sequence without its promoter were cloned into pCR BluntII TOPO. The seven recombinant plasmids were successfully transformed into E. coli strain TOP10, giving rise to clones TF-15166, TF-19023, TF-15816, TF-18991, TF-25456, TF-16290, TF-20098, and TF-15829 (susceptible control). In all recombinant plasmids, the insert was proved to be under the transcriptional control of the lacZ promoter. MICs of beta-lactams determined for the recombinant clones showed that the S287N substitution had a greater impact on resistance than S287C, H296P, and A292V (Table 2). TF-15166 and TF-19023 shared the same H296P mutation, but TF-15166 additionally harbored an A215V mutation that did not further increase the resistance to cefepime (MIC = 2 mg/L vs. MIC = 4 mg/L for TF-19023). The A215V had also weak impact on the susceptibility to cefepime when tested alone (TF-25456). Isolates 20098 displayed four different mutations (A89T, P194A, A220T, R232C), which do not increase resistance to cefepime (MIC = 0.19 mg/L) and were not found alone in the other tested isolates. TF-15829 (susceptible control) showed high MICs to ceftazidime (MIC = 24 mg/L) and cefoxitin (>256 mg/L) but a similar MIC value to cefepime (MIC = 0.125 mg/L) that TF-25456 or TF-20098. No mutation in the coding sequence of the ampC gene was found in TF-15829 compared to the reference strain.

TABLE 2
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Table 2. Characteristics of the 7 E. coli transformants representative of the strains presenting a reduced susceptibility to cefepime.

Discussion

In this study, we report the first ESAC producers in animals worldwide. Contrary to humans (Barnaud et al., 2001; Mammeri et al., 2004b), ESACs were exclusively searched and found in the E. coli species. This results from the low proportion of animal infections due to other Gram negative bacteria expressing a chromosomal ampC gene, such as S. marcescens, E. cloacae, E. aerogenes, A. baumanii, or P. aeruginosa (Nordmann and Mammeri, 2007). Also, all ESAC-producing E. coli were from cattle as a result of our study design, and further investigations are surely needed to explore other animal sectors. The prevalence of ESAC-producing E. coli in cattle in France was investigated over a 6-year period of 2005–2010 and estimated at 0.37% (23/6158) in clinical isolates. Of note, this prevalence is similar to that found at a French hospital in the Paris suburb, where six ESAC producers were reported out of 2800 E. coli isolates (0.21%) (Mammeri et al., 2008). This prevalence is however four times higher than that found at another French hospital, where 41 AmpC-overproducing E. coli isolates accounted for 0.16% of all clinical E. coli isolates studied, of which only 11 produced ESACs (Cremet et al., 2010). However, in that study, inclusive criteria for ESAC producers included a MIC superior or equal to 64 mg/L of ceftazidime, which may have been a factor of underestimation.

Here, ESAC producers were mostly detected in diarrheic calves, which are also known as the main reservoir of ESBL genes in cattle (Madec et al., 2008, 2012; Valat et al., 2012). This may reflect the overall high antibiotic pressure with beta-lactams in infections of the enteric tract of young animals. However, a subset of 607 E. coli isolates from healthy cattle was also investigated, which revealed an even higher ESAC prevalence compared to diseased ones (5/607, 0.82%). This mirrors the situation in humans where ESAC producers were most likely found in E. coli belonging to the less pathogenic phylogroups A or B1 (Mammeri et al., 2006; Corvec et al., 2007). Moreover, the cattle ESAC-producing E. coli isolates predominantly belonged to the CC23, similarly to what has been reported in humans (Cremet et al., 2010). Further studies would be needed to understand why this evolution of the chromosomal ampC gene of E. coli seems restricted to the same genetic lineages in humans and animals despite different antimicrobial pressures and a rather host-specific distribution of the E. coli clones.

This study also provides an overview of 23 ampC promoter/attenuator sequences in cefoxitin-resistant E. coli from cattle. Contrary to humans, reports on mutations in the ampC promoter/attenuator regions of E. coli from animal sources are scarce (Brinas et al., 2002; Guillouzouic et al., 2009). The polymorphism at positions −88, −82, −42, −18, −1, +58 found in strong ampC promoters (Olsson et al., 1983; Guillouzouic et al., 2009) was highly conserved in our collection. In particular, this includes the −42 mutation shown to increase ampC gene expression (Nelson and Elisha, 1999; Caroff et al., 2000), and the association of the −42 and −18 changes, which creates two displaced new −35 and −10 boxes with an optimal 17-pb spacer region. The −18 mutation without the −42 mutation was rare (one isolate only) but had already been reported, in particular in E. coli isolates which do not over-express their chromosomal AmpC (Brinas et al., 2005). Other reported changes were not detected here, such as mutations −32, −11, or +6 (Caroff et al., 2000; Corvec et al., 2002; Mulvey et al., 2005; Tracz et al., 2007). However, these mutations might be more frequent in E. coli isolates of B2 or D phylogroups, which are not well represented here (Mammeri et al., 2008). The deletion of the entire attenuator was not observed either (Tracz et al., 2005).

In this study, all relevant amino acid replacements found in the ampC gene (namely S287N, S287C, A292V, and H296P) were single substitutions, confirming that cumulating substitutions in the catalytic site is not a preferential evolutionary scheme for AmpCs, contrary to class A beta-lactamases, as previously demonstrated (Le Turnier et al., 2009). A new A215V replacement was reported here in four E. coli isolates, either as a single or an associated mutation. This mutation, which occurs close to the DAEX motif in the Ω loop, has obviously little if no impact on the cefepime susceptibility. Indeed, in the corresponding native isolates, reduced susceptibility to cefepime may result from decreased permeability and/or oxacillinase production. Also, in the recombinant clones, the wild-type ampC gene of the cefepime susceptible control conferred the same MIC to cefepime than the A215V replacement. The main structural alteration found was the S287N replacement, which occurred in the H-9 helix close to the R2 loop. This mirrors the situation in humans where the S287N substitution has been shown to widely contribute to the ESAC phenotype (Mammeri et al., 2006). Similarly, other substitutions were also found, such as the S287C mutation, or both the H296P or the A292V mutations inside the R2 loop. Comparison of MICs of cefepime also confirmed that the S287N substitution has greater impact on resistance than the others (Mammeri et al., 2006).

Altogether this study is, to our best knowledge, the very first report of ESACs in animals. In humans, those enzymes have likely evolved from wild-type AmpCs by modifications in the vicinity of the R1 or R2 active sites. While the ESACs described here strongly resemble the human ones in both their genetic backgrounds and the responsible mutations, the driving forces for the selection of ESACs in animals are still unknown. In humans, the ESAC phenotype frequently occurs after cefepime therapy. On the contrary, different ESCs are used in animals, whose possible impact needs to be considered. In particular, ceftiofur is an ESC which is widely used in animals, and elevated MICs values to ceftiofur were found here in the recombinant E. coli clones. Hence, the use of veterinary cephalosporins in the selection of ESAC producers in animals might be a plausible hypothesis. Of note, most human and animal ESAC E. coli reported so far belong to the CC23—a well-adapted E. coli clone in the two hosts -, so that the transfer of ESAC producers from humans to animals may have contributed as well. Alternately, this may result from a favorable genetic background of the ampC genes in E. coli isolates of phylogroup A, irrespective of their human or animal origin (Mammeri AAC 2009). Even though data in humans report similar ranges of ESACs vs. plasmidic AmpCs (Mammeri et al., 2008), the true prevalence of ESACs in animals should be further investigated since this emerging mechanism surely contributes to the global burden of resistance to ESCs in animals.

Conflict of Interest Statement

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Acknowledgments

This work was supported by the French Agency for Food, Environmental and Occupational Health and Safety (Anses). We are grateful to all peripheral laboratories from the Resapath network that provided the clinical strains.

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Keywords: ESAC, Escherichia coli, bovine, animal, AmpC

Citation: Haenni M, Châtre P and Madec J-Y (2014) Emergence of Escherichia coli producing extended-spectrum AmpC β-lactamases (ESAC) in animals. Front. Microbiol. 5:53. doi: 10.3389/fmicb.2014.00053

Received: 26 September 2013; Accepted: 27 January 2014;
Published online: 14 February 2014.

Edited by:

Axel Cloeckaert, Institut National de la Recherche Agronomique, France

Reviewed by:

Jian-Hua Liu, South China Agricultural University, China
Guillaume Arlet, Université Pierre et Marie Curie, France

Copyright © 2014 Haenni, Châtre and Madec. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.

*Correspondence: Jean-Yves Madec, Agence Nationale de Sécurité Sanitaire, Unité Antibiorésistance et Virulence Bactériennes, 31 Avenue Tony Garnier, 69364 Lyon cedex 7, France e-mail: jean-yves.madec@anses.fr

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