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Transferable DHA-1 cephalosporinase in Escherichia coli.

Three Escherichia coli isolates resistant to third-generation cephalosporins but negative for extended-spectrum beta-lactamase production were isolated from hospitalised patients in Zagreb, Croatia, during June 2003 to February 2004. Resistance was due to the inducible production of a DHA-1 cephalosporinase. Each isolate contained an integron-associated bla(DHA-1)-ampR sequence carried by similar-sized plasmids, of which one was self-transferable. Serotyping and polymerase chain reaction typing using ERIC2 primer indicated that the isolates were distinct. This is the first description of DHA beta-lactamase production in E. coli.

Bacterial Proteins↗

Characterisation of CTX-M and AmpC genes in human isolates of Escherichia coli identified between 1995 and 2003 in England and Wales.

CTX-M and AmpC genes in human isolates of Escherichia coli, their genetic environment and their host plasmids were examined. Isolates (n=103) were selected based on resistance (minimum inhibitory concentration (MIC)> or =1 microg/mL) to ceftriaxone and cefotaxime. Polymerase chain reaction (PCR) and sequencing identified 29 isolates containing bla(CTX-M-15), 1 each of bla(CTX-M-2) (a strain originating from Israel) and bla(CTX-M-40), 20 isolates containing bla(CMY-7), 4 bla(CMY-2) and 1 bla(CMY-21). This is the first study of plasmid-mediated AmpC genes in E. coli in the UK. Eleven cefoxitin-resistant, AmpC PCR-negative isolates had ampC promoter region mutations. All bla(CTX-M-15) and 24 of 25 bla(CMY) genes were associated with an ISEcp1-like element. The bla(CTX-M-2) was located in an orf513-bearing class 1 integron. Plasmid restriction digests suggest transfer of genes between different plasmid backbones.

Anti-Bacterial Agents↗

Molecular epidemiology of antimicrobial resistance among Salmonella enterica serovar Infantis from poultry in Kagoshima, Japan.

Antimicrobial susceptibility and resistance genes of 135 strains of Salmonella enterica serovar Infantis isolated from poultry in Kagoshima were examined. One strain (0.7%) was resistant to ampicillin (A), 97% to streptomycin (S), 95.6% to sulphamethoxazole (Su), 96.3% to oxytetracycline (T), 11.1% to kanamycin (Km) and 36.3% to ofloxacin (O). Multiresistant phenotypes identified were ASSuT-Km, SSuT-Km, SSuT-O and SSuT. Class 1 integrons were detected in 94.8% of isolates. Approximately 89% of oxytetracycline-resistant strains carried the tetA gene and all of the 131 streptomycin-resistant isolates carried the aadA1a gene. Forty-percent of kanamycin-resistant isolates carried the aphA1-Iab gene. All isolates were susceptible to chloramphenicol. Recognition of TEM-type beta-lactamase in a S. Infantis strain from chickens is a recent rare finding in Japan.

Animals↗

Characterisation of KLUA-9, a beta-lactamase from extended-spectrum cephalosporin-susceptible Kluyvera ascorbata, and genetic organisation of bla(KLUA-9).

This study characterised the genetic environment of the chromosomally encoded bla(KLUA-9) gene from a clinical Kluyvera ascorbata isolate and performed a kinetic characterisation of KLUA-9. Purified KLUA-9 showed the highest catalytic efficacies towards benzylpenicillin, ampicillin, piperacillin, first-generation cephalosporins, cefuroxime and cefoperazone; like other 'cefotaximases', it showed a much higher rate of hydrolysis of cefotaxime than ceftazidime, whilst dicloxacillin, cefoxitin and imipenem behaved as poor substrates. A 9kb insert from K. ascorbata was cloned (Escherichia coli KK68C1) and sequenced. bla(KLUA-9) and its 266bp upstream flanking region (almost identical to the integron-associated bla(CTX-M-2)) are preceded by an aspat variant, a ypdABC-like operon and two open reading frames with unknown functions. Unlike ISCR1-associated bla(CTX-M-2) genes, we failed to detect the putative orf513 recombination sites. Instead, we were able to localise the 5bp target sites for insertion of ISEcp1B, suggesting that this element could be responsible for future (or still undetected) mobilisation of bla(KLUA-9) to more efficiently transferred elements.

Base Sequence↗

Molecular characterization of antimicrobial resistance in Escherichia coli from dairy farm environment.

The present study was carried out to study the prevalence and genetic mechanisms of antimicrobial resistance in E. coli strains from dairy farms. A total of 60 E. coli strains were initially isolated from 192 dairy farm samples using a selective antibiotic approach and confirmed as E. coli by PCR. Among these, 48 E. coli isolates predominantly from fecal samples were further studied. These isolates were majorly classified in phylogroup A (43.75 %) and B1 (16.66 %) and showed predominant resistance against ampicillin (60.41 %) followed by piperacillin (56.25 %), tetracycline (54.16 %), and other β-lactams such as cefotaxime (47.91 %) and cefuroxime (43.75 %). A significant portion (22.9 %) of the E. coli isolates were multidrug-resistant (MDR) and 50 % were ESBL-positive. Multiple antibiotic resistance (MAR) index ≥0.4 was exhibited by three isolates. Genotypic analysis identified resistance genes associated with β-lactams (blaCTX-M-1, 64.58 %; blaTEM, 35.41 %; blaCTX-M-9, 4.16 %), tetracycline (tetA,37.58 %; tetB, 47.91 %), trimethoprim (dfrA17, 16.66 %), aminoglycosides [aac(6')-Ib-cr, 2.08 %] and fluoroquinolones [qnrB, 25 %; qnrS, 16.66 %; gyrB (S492N), 45.83 %; gyrA (S83L), 45.83 %; gyrA(S87L), 39.58 %; parC (S80I), 14.58 %]. E. coli isolates also showed a high frequency of mobile genetic elements (MGEs) such as IS26 (56.25 %), IncFIB plasmids (52.08 %), and Tn3 transposons (56.25 %). Class 1 integrons harbouring 200 and 800 bp gene cassettes were also detected in 5 E. coli isolates (10.4 %). Overall, this study highlights the high prevalence of diverse AMR genes in cattle-derived E. coli and their strong association with various MGEs. These findings emphasize the need for continuous genomic surveillance to mitigate resistance spread, particularly within and from dairy environments.

Escherichia coli↗

Nontyphoidal Salmonella causing focal infections in patients admitted at a Spanish general hospital during an 11-year period (1991-2001).

In focal infections (FI) caused by nontyphoidal Salmonella serotypes and recorded at a Spanish hospital 1991-2001, clinical and microbiological features were analyzed. Thirty-five revised episodes were related to infections of the digestive (10), urinary (10), pulmonar (4), vascular (4), osteoarticular (3) and central nervous (3) systems, and with a submaxillary lymph node. At least 16 episodes were associated with previous or concomitant gastroenteritis, 19 with primary or secondary bacteremia, and 18 with underlying diseases of different severity. Eighteen patients were male and 14 female (data were not available for three patients), while 1, 4, 12 and 15 patients were, respectively, categorized as children, young adults, senior adults and elderly. Sources of Salmonella strains were urine (13), blood (11), purulent abscess (8), cerebrospinal fluid (3), peritoneal fluid, pleural fluid, wound exudates, aneurism (2 of each), ascitic fluid, sputum, tracheal aspirate, needle aspirate, bone and lymph node (1 of each) samples. Only 28 Salmonella strains involved in FIs were available for further analysis. They were discriminated into 6 serotypes, and into 13 XbaI macrorestriction, 6 virulence, 11 antimicrobial resistance, 5 integron and 10 plasmid profiles. Broadly, the pattern of serotype distribution of salmonellas involved in FIs matched that of those causing gastroenteritis, with the pandemic Enteritidis and Typhimurium (18 and 6 strains, respectively) being clearly predominant. Within serotype, the same lineages (as revealed by XbaI-macrorestriction analysis as well as R- and V-profiles) were represented in both disease groups, with host-related factors apparently playing a more critical role than the individual strain in the outcome of the disease.

Adolescent↗

Investigating AHL-associated quorum sensing impact on antibiotic-driven resistome expansion in anaerobic fermentation microbiomes: Metagenomic insights.

Previous studies have demonstrated that quorum sensing (QS) can mitigate the impact of antibiotics on environmental microbial communities. Metagenomic analysis was used to examine AHL effects on the resistome in anaerobic fermentation microbiomes under antibiotic stress in this research. AHLs reduced ARGs, MGEs, and phage abundance compared to antibiotic-only samples following the addition of high concentrations (500 nmol/L) of AHLs. Phages and integrons played pivotal roles in shaping the resistome. Escherichia coli, Vibrio cholerae, and Pseudomonas aeruginosa were key targets affected by AHLs. Both the assembled environmental metagenomes and the complete genomes of isolated bacteria consistently support the broad potential of quorum-sensing systems in mediating the dissemination or regulation of resistome spreading. Quorum sensing systems are very likely to affect microbial community resistomes by regulating the phageome. These insights are valuable for refining fermentation and waste management processes, offering potential in environmental restoration and possibly curbing the spread of resistance genes.

Quorum Sensing↗

Genomic characterisation of ST233 Pseudomonas aeruginosa co-producing KPC-2 and VIM-2 in Northeastern Brazil during the COVID-19 pandemic: Evidence of independent horizontal acquisition events.

BACKGROUND: Dual-carbapenemase-producing Pseudomonas aeruginosa poses a major therapeutic and epidemiological challenge worldwide, yet systematic data on KPC and VIM co-production in Brazil remain limited. The COVID-19 pandemic intensified antimicrobial use, a period temporally associated with increased carbapenemase detection globally. OBJECTIVES: To characterise the molecular epidemiology and resistance profiles of KPC and VIM co-producing P. aeruginosa isolates from Brazil (2019-2023). METHODS: Between 2019 and 2023, 1489 multidrug-resistant P. aeruginosa isolates were screened by multiplex PCR for carbapenemase-encoding genes. Co-producing isolates underwent pulsed-field gel electrophoresis (PFGE) for clonal profiling, followed by whole-genome sequencing (WGS) for high-resolution phylogenomic analysis. Antimicrobial susceptibility testing and plasmid characterisation using next-generation sequencing platforms were also performed. RESULTS: Forty-two isolates (2.8%) harboured both blaKPC-2 and blaVIM-2, with detection occurring exclusively between 2020 and 2023, temporally coinciding with the COVID-19 pandemic. PFGE identified eight distinct clonal groups, providing evidence for independent horizontal gene transfer (HGT) events, whilst WGS confirmed all isolates as the high-risk ST233 lineage. Chromosomally integrated blaVIM-2 within class 1 integrons predominated; 2 isolates carried dual chromosomal copies. Plasmid-borne blaKPC-2 was identified across heterogeneous replicons (43.3-430.1 kb), suggesting multiple independent acquisition events. All co-producing isolates displayed extensive drug resistance, retaining in vitro susceptibility only to cefiderocol and colistin. CONCLUSIONS: ST233 co-producing KPC and VIM, represents a high-risk resistance phenotype of epidemiological significance. Divergent genomic architectures suggest active horizontal dissemination across diverse genetic backgrounds rather than clonal expansion, highlighting the need for enhanced surveillance and infection control strategies.

Bacterial genomic characterisation↗

Emergence of a Tn7-associated blaVIM-1 within IncC plasmids in ST46 Providencia stuartii from Northern Italy.

OBJECTIVES: To characterize the genomic features and resistance determinants of carbapenem-resistant Providencia stuartii isolates circulating in Northern Italy, with a focus on the genetic context of blaVIM-1. METHODS: Five P. stuartii isolates collected between 2022 and 2024 from interconnected healthcare facilities underwent molecular characterization. Antimicrobial susceptibility testing was performed according to EUCAST 2025 criteria. Whole-genome sequencing was conducted using Illumina technology, followed by resistome, plasmidome, and phylogenetic analyses. Comparative genomics was used to investigate the genetic environment of blaVIM-1. RESULTS: All isolates belonged to the emerging ST46 lineage and exhibited an extensively drug-resistant phenotype, remaining susceptible only to amikacin. The blaVIM-1 gene was located on a &#x223c;100 kb mobilizable IncC plasmid shared across all isolates. Notably, blaVIM-1 was embedded within a 13 kb Tn7 transposon carrying a complete set of transposition genes and inserted into a class 1 integron structure. Comparative analysis revealed no full homology with previously described IncC plasmids, suggesting a novel genetic arrangement. Phylogenetic analysis demonstrated close relatedness among Italian isolates (<33 SNPs), supporting local clonal circulation, while showing clear separation from previously described NDM-producing ST46 strains. CONCLUSIONS: This study describes the rare association of blaVIM-1 with a Tn7 transposon in P. stuartii, highlighting the genomic plasticity of IncC plasmids and their role in the emergence of new resistance platforms. The identification of this structure in a high-risk lineage underscores the potential for further dissemination of carbapenem resistance in healthcare settings.

IncC↗

Global emergence and transmission dynamics of carbapenemase-producing Citrobacter freundii sequence type 22 high-risk international clone: a retrospective, genomic, epidemiological study.

BACKGROUND: Carbapenemase-producing Citrobacter (CPC) species have recently been recognised as emerging pathogens associated with nosocomial infections in humans. The increased rate of Citrobacter freundii infections is a public health concern and there is a paucity of genomic data regarding its global transmission dynamics. We aimed to characterise the genetic features of CPC species, and their associated carbapenemase-encoding plasmids, obtained from hospitalised patients in China and from publicly available global data, with a particular focus on high-risk clones. METHODS: This was a retrospective, genomic epidemiological study of CPC species obtained from a tertiary hospital in Zhejiang Province, China, from March 5, 2013, to March 5, 2023. We used antimicrobial susceptibility testing, short-read and long-read whole-genome sequencing, phylogenomic analysis, and plasmid structure analysis. A global dataset of complete plasmid sequences encoding blaKPC, blaNDM, and blaIMP was constructed from the National Center for Biotechnology Information (NCBI) RefSeq database to provide insights into their diversity and distribution. All carbapenemase-producing Citrobacter freundii genomes from the NCBI GenBank database were incorporated in the comparative genomic analyses. Bayesian phylogeographical analysis and growth rate assays were carried out to characterise the high-risk C freundii sequence type (ST) 22 clone. FINDINGS: 1724 Citrobacter species isolates were collected from diverse clinical specimens, with 48 identified as CPC species. Citrobacter koseri (22 [46%] of 48) and C freundii (20 [42%]) were the predominant CPC species. Comparative analysis found C freundii carried significantly higher median numbers of plasmid replicons (5&#xb7;0 [IQR 3&#xb7;3-6&#xb7;0] vs 2&#xb7;0 [2&#xb7;0-3&#xb7;0]; p<0&#xb7;0001) and acquired antimicrobial resistance genes (12&#xb7;0 [7&#xb7;3-15&#xb7;8] vs 3&#xb7;0 [3&#xb7;0-5&#xb7;3]; p<0&#xb7;0001) than did C koseri. Molecular characterisation identified Inc-type plasmids, In823::Kl.pn.I3/In1589-like/In837-like integrons, Tn6296/Tn125/Tn5060 transposons, and insertion sequences (eg, IS26, IS3000, IS5, ISAba125, ISCR1), collectively facilitating the dissemination of carbapenemase genes. Global analysis of 3126 carbapenemase-encoding plasmids found epidemic plasmids with broad host ranges and global diversity. Phylogenetic investigation of predominant carbapenemase-encoding plasmids showed their persistence across geographical regions, temporal spans, and Enterobacterales species, exhibiting high genetic similarity to our clinical plasmids. A phylogenetic tree of 726 global carbapenemase-producing C freundii genomes showed that ST22 (227 [31&#xb7;3%]) represents the predominant multidrug-resistant clone across community, health-care, and environmental niches. Transmission across continents contributes to the global predominance of the ST22 clone, which carries a high load of resistance genes (median 15&#xb7;0 [IQR 11&#xb7;0-17&#xb7;0] vs 12&#xb7;0 [3&#xb7;0-16&#xb7;0]; p<0&#xb7;0001) and enhanced plasmid maintenance capacity (median replicons 5&#xb7;0 [IQR 4&#xb7;0-7&#xb7;0] vs 4&#xb7;0 [3&#xb7;0-6&#xb7;0]; p<0&#xb7;0001) relative to non-ST22 clones. INTERPRETATION: Our study provides evidence to suggest that Citrobacter species are emerging carriers of carbapenem-resistance genes. These findings provide insight into the population structure of CPC species and highlight C freundii ST22 as a prominent high-risk international clone. FUNDING: National Natural Science Foundation of China, National Health Commission Scientific Research Fund-Zhejiang Provincial Major Health Science and Technology Plan Project, Zhejiang Province Natural Science Foundation Project, Outstanding Youth Foundation of Jiangsu Province of China, the Priority Academic Program Development of Jiangsu Higher Education Institutions, and Postgraduate Research and Practice Innovation Program of Jiangsu Province.

Citrobacter freundii↗

Treatment strategies for imipenemase-producing Gram-negative infections: lessons from Japan.

Carbapenems remain essential for treating serious infections caused by drug-resistant Gram-negative bacteria because of their broad-spectrum activities and favourable safety profiles. However, the emergence of carbapenemase-producing Enterobacterales, which produce enzymes that efficiently hydrolyse &#x3b2;-lactams including carbapenems, continues to undermine their clinical utility. Although new antibiotics such as ceftazidime-avibactam, imipenem-relebactam, meropenem-vaborbactam, aztreonam-avibactam, and cefiderocol have expanded therapeutic options, their effectiveness varies substantially across different carbapenemase families. Carbapenemases produced by Enterobacterales include serine &#x3b2;-lactamases (Ambler classes A and D) and metallo-&#x3b2;-lactamases (MBLs; Ambler class B), each with distinct substrate and inhibitor profiles. Clinically relevant MBLs-including imipenemase (IMP), New Delhi MBL (NDM), and Verona integron-encoded MBL (VIM) variants-show markedly different biochemical properties and inhibitor susceptibilities. Despite their clinical relevance, optimal treatment strategies for infections caused by IMP-producing Enterobacterales remain poorly defined. The unique reactivity of IMP-type MBLs to inhibitors differs from that of other MBLs such as NDMs or VIMs, underscoring the need for tailored therapeutic approaches. In this Personal View, we summarise current evidence and, drawing on Japan's experience as an endemic setting for IMP producers, outline key scientific, clinical, and public health challenges that should be addressed globally to develop effective, evidence-based treatment strategies for IMP-producing Enterobacterales infections.

Humans↗

Combinatorial genetic evolution of multiresistance.

The explosion in genetic information, whilst extending our knowledge, might not necessary increase our conceptual understanding on the complexities of bacterial genetics, or why some antibiotic resistant genotypes such as blaCTX-M-15 and blaVIM-2 appear to dominate. However, the information we have thus far suggests that clinical isolates have 'hijacked' plasmids, primarily built of backbone-DNA originating from environmental bacteria. Additionally, the combinatorial presence of other elements such as transposons, integrons, insertion sequence (IS) elements and the 'new' ISCR (IS common region) elements have also contributed to the increase in antibiotic resistance - an antibiotic resistant cluster composing four or five genes has become commonplace. In some instances, the presence of antibiotics themselves, such as fluoroquinolones, can mediate a bacterial SOS cell response, subsequently amplifying and/or augmenting the transfer of large genetic entities therefore, potentially promoting long-term detrimental effects.

Anti-Bacterial Agents↗

Improving protein solubility: the use of the Escherichia coli dihydrofolate reductase gene as a fusion reporter.

We have devised a strategy for screening mutant libraries for enzyme variants with enhanced solubility. The method is based on the observation that Escherichia coli can become insensitive to the antibiotic trimethoprim (TMP) if dihydrofolate reductase (DHFR) is expressed at an appropriate level. DHFR is a very soluble protein and can be expressed at levels that exceed normally lethal concentrations of TMP. In our approach, the gene encoding an insoluble target protein is placed in a vector so that the translated protein will be fused to DHFR. The resulting fusion protein will form inclusion bodies and inactivate DHFR-the cells will be susceptible to TMP. Mutations to the target protein that make it more soluble will also make the fusion protein more soluble so that DHFR will be at least partially active-the cells will be resistant to TMP. As the solubility of the target protein increases, the cells will become more resistant to TMP. The system was tested with a putative acetyltransferase (ACE) from a strain of the marine bacterium Vibrio fischerii. The gene encoding this protein was of interest since it is part of a mobile gene cassette within an integron array of the strain in question. After multiple rounds of shuffling and selection, ACE mutants were produced that had significantly improved solubility.

Acetyltransferases↗

Comparative analysis of three indigenous plasmids from Xanthomonas axonopodis pv. glycines.

The complete nucleotide sequences of three representative plasmids, pAG1 from Xanthomonas axonopodis pv. glycines strain AG1, and pXAG81 and pXAG82 from strain 8ra, were determined. The sizes of pAG1, pXAG81, and pXAG82 are 15143, 26721, and 1315 base pairs, respectively. A possible 16, 34, and 1 open-reading frames (ORFs) are present in pAG1, pXAG81, and pXAG82, respectively. pAG1 could encode proteins homologous to AvrBs3, TnpA, TnpR, RepA, HtrA, ParA, M.XmaI, R.XmaI, and six hypothetical proteins. pXAG81 possibly encodes proteins homologous to those involved in conjugal plasmid transfer. Possible oriT sequences similar to those of RP4 were found between mobB and mobC homologs. At the end of the RepA homolog in pAG1 and pXAG81, a putative oriV region at the 3'-end of RepA similar to the integron TNCP23 in pKLC102 of Pseudomonas aeruginosa C strain was found. All 255 isolates carried either pAG1 type or pXAG81 type, and 217 isolates appeared to carry tra gene homologs. Both pAG1 and pXAG81 types contained an avrBs3 homolog varying from three copies in AG1 to eight copies in AG166.

Base Sequence↗

The emergence of multidrug resistance to antimicrobial agents for the treatment of typhoid fever.

Resistance to chloramphenicol was reported in Salmonella Typhi in 1950 but it was not until 22 years later that the first outbreaks of chloramphenicol-resistant typhoid fever occurred. Multidrug-resistant (MDR) Salmonella Typhi emerged in the 1980s and today has an almost worldwide distribution. Genome analysis of Salmonella Typhi strain CT18, an MDR isolate from a patient admitted to The Centre for Tropical Diseases, Ho Chi Minh City, Viet Nam, in December 1993 revealed that the resistance plasmid pHCM1 is very closely related to plasmid R27 which was first isolated in 1961. There is a core region shared by the two plasmids with five regions of variation. Two of these regions contain the genes encoding resistance. The largest region is 34.955 kbp in length, is bordered by two almost identical IS10 elements and contains several integron-like structures including a truncated Tn10 element. The second region is 14.75I kbp and encodes a trimethoprim-resistance gene, dfrA14, associated with a class one integrase. Restriction enzyme analysis has shown that the variation in Salmonella Typhi plasmids, collected during the emergence of resistant Salmonella Typhi in Viet Nam, maps to five variable regions. These regions appear to be hot spots for DNA acquisition in IncHI1 plasmids.

Anti-Bacterial Agents↗

Novel bacterial hosts and mobile genetic structure of tet(X) variants in tetracycline-contaminated aquatic environment uncovered by culture and long-read metagenomics.

Clinically important tigecycline (3rd-generation tetracycline) resistance tet(X) variants were inferred to have evolutionarily originated from environmental bacteria, and have been recognized among environment, human and animals. However, genetic basis for environmental proliferation and dissemination of tet(X) variants remains ambiguous. This study profiled tet(X) variants at gene, contig, isolate, and community levels in environmental community subjected to long-term stepwise increasing oxytetracycline (1st-generation tetracycline) or tigecycline pressure using long-term microcosm experiments, quantitative PCR, bacterial isolation, whole-genome sequencing, and Nanopore-based long-read metagenomics. We confirmed that both oxytetracycline and tigecycline enriched the abundance of tetracycline resistance genes especially oxytetracycline-enriched tet(X3). Unexpectedly diverse bacterial hosts and genetic structure of tet(X)-positive mobile elements in the environment microbiome were identified using bacterial isolation and long-read Nanopore metagenomics. Pseudomonas defluvii was first reported to carry tet(X3) in the chromosome, forming IS26-tet(X3)-res-ISCR2 circular intermediate to transfer between different DNA molecules. Database mining revealed similar mobile segments have prevailed among animal-derived Acinetobacter species. Unlike the widely reported ISCR2-mediated transfer of tet(X6), we identified a novel mobile multidrug transposon TnAs3 where tet(X6) and class 1 integron co-transferred as its passenger region. Mobile tet(X2)-ere(D)-aadS-erm(F)-blaOXA-347 segment was annotated in Runella, and co-occurrences of tet(X2) and ere(D), aadS, blaOXA-347 were also found in Flavobacterium, Arsenicibacter, Chryseobacterium and Pedobacter. Overall, tetracycline-contaminated aquatic microbiome harboured diverse mobile tet(X)-positive segments which have not yet been acquired by clinical pathogens, and thus served as the genetic pool of tet(X) variants together with indigenous bacterial hosts, especially the newly reported Pseudomonas defluvii. Reducing pollution of older-generation tetracyclines would be a proactive way to mitigate environmental evolution and possible clinical effects of tet(X) variants.

Metagenomics↗

Persistence of sulphonamide resistance in Escherichia coli in the UK despite national prescribing restriction.

BACKGROUND: There is a clear association between heavy antimicrobial consumption within a population and the frequent recovery of resistant bacteria, but whether a reduction in antimicrobial use can reverse this process is less clear. We investigated the effect of a national restriction of sulphonamide prescribing in the UK on the prevalence of sulphonamide resistance in Escherichia coli. METHODS: Consecutive clinical isolates of E coli were collected at the Royal London Hospital in 1991 and 1999. These collections, each of more than 350 isolates, were compared. Minimum inhibitory concentrations of sulphamethoxazole and eight other antimicrobials were determined. The presence and locations of sulphonamide-resistance genes were examined by PCR, plasmid extraction, Southern hybridisation, and transconjugation. FINDINGS: Despite a huge decrease in sulphonamide prescriptions (from 3,208,000 [corrected] prescriptions per year in 1991 to 77,000 [corrected] in 1999), the frequency of resistance remained high in 1999 (165/359 [46.0%] vs 143/360 [39.7%] in 1991; difference 6.2% [95% CI 20.9 to 13.3]). Integron-borne sulI was present in 16.4% of isolates in 1991 and 17.5% in 1999. The prevalence of sulII increased from 26.7% in 1991 to 36.5% in 1999 (difference 9.8% [3.1 to 16.5] p=0.0046). SulII was located on large plasmids, at least some of which were conjugative multiresistance determinants. INTERPRETATION: These results show that a huge decrease in antibiotic prescribing does not necessarily reduce resistance within a useful time. The main reason seems to be the genetic linkage of the index resistance to other resistance determinants.

Blotting, Southern↗

The 27.8-kb R-plasmid pTET3 from Corynebacterium glutamicum encodes the aminoglycoside adenyltransferase gene cassette aadA9 and the regulated tetracycline efflux system Tet 33 flanked by active copies of the widespread insertion sequence IS6100.

We determined the complete nucleotide sequence of the 27.8-kb R-plasmid pTET3 from Corynebacterium glutamicum LP-6 which encodes streptomycin, spectinomycin, and tetracycline resistance. The antibiotic resistance determinant of pTET3 comprises an intI1-like gene, which was truncated by the insertion sequence IS6100, and the novel aminoglycoside adenyltransferase gene cassette aadA9. The deduced AADA9 protein showed 61% identity and 71% similarity to AADA6 of integron In51 from Pseudomonas aeruginosa. In addition, pTET3 carries the novel repressor-regulated tetracycline resistance determinant Tet 33 which revealed amino acid sequence homology to group 1 tetracycline efflux systems. The highest level of similarity was observed to the tetracycline efflux protein TetA(Z) from the C. glutamicum plasmid pAG1 with 65% identical and 77% similar amino acids. Each antibiotic resistance region of pTET3 is flanked by identical copies of the widespread insertion sequence IS6100 initially identified in Mycobacterium fortuitum. Transposition assays with a cloned copy of IS6100 revealed that this element is transpositionally active in C. glutamicum. These data suggest a central role of IS6100 in the evolutionary history of pTET3 by mediating the cointegrative assembly of resistance gene-carrying DNA segments.

Amino Acid Sequence↗