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Keiichi Hiramatsu

Publications and source records attributed to Keiichi Hiramatsu.

18 recordsLinked to original sources

Insights on antibiotic resistance of Staphylococcus aureus from its whole genome: genomic island SCC.

Staphylococci are ubiquitous colonizers of the skin and mucous membranes and Staphylococcus aureus is the most pathogenic species. The spread of antibiotic resistance among S. aureus strains is a major concern in the treatment of staphylococcal infections. Acquisition of resistance may involve mutation of a bacterial gene on the chromosome or transfer of a resistance gene from other organisms by some form of genetic exchange (conjugation, transduction, or transformation). Completion of whole genome sequences of three methicillin-resistant S. aureus (MRSA) strains has provided us a bird's-eye view of the distribution of the mobile genetic elements in the bacterial chromosome that encode antibiotic resistance as well as pathogenicity in S. aureus.

Community-Acquired Infections↗

Two-component system VraSR positively modulates the regulation of cell-wall biosynthesis pathway in Staphylococcus aureus.

DNA microarray covering the whole genome of Staphylococcus aureus strain N315 was prepared to investigate transcription profiles. The microarray analyses revealed that vancomycin induces transcription of 139 genes. Forty-six genes among them failed to be induced in the vraSR null mutant KVR. Part of the genes regulated by VraSR system is associated with cell-wall biosynthesis, such as PBP2, SgtB and MurZ. Other cell-wall synthesis inhibitors also induced VraSR, suggesting that the sensor kinase VraS responds to the damage of cell-wall structure or inhibition of cell-wall biosynthesis. Additionally, the vraSR null mutants derived from hetero- and homo-methicillin-resistant S. aureus showed significant decrease of resistance against teicoplanin, beta-lactam, bacitracin and fosfomycin but not of D-cycloserine and levofloxacin. The observation strongly indicates that VraSR constitutes a positive regulator of cell-wall peptidoglycan synthesis, and that is deeply involved in the expression of beta-lactam and glycopeptide resistance in S. aureus.

Anti-Bacterial Agents↗

Physiological and molecular analysis of a mecA-negative Staphylococcus aureus clinical strain that expresses heterogeneous methicillin resistance.

Staphylococcus aureus clinical isolate 61/5896 exhibited methicillin resistance (MIC 64 mg/L), but lacked mecA, which encodes penicillin-binding protein 2'. The strain was isolated in England in 1961, and exhibited unstable heterogeneous methicillin resistance. When cultivated in drug-free medium, the methicillin resistance of 61/5896 increased after three daily passages, then decreased and was completely lost after 12 days' passage. Electron microscopy revealed that strain 61/5896 had a thicker and rougher cell wall than its methicillin-susceptible derivatives. It produced about three times more penicillin-binding protein 2 (PBP2) than methicillin-susceptible derivatives. The strain was characteristically a non-producer of autolytic enzyme, though the phenotype, which was lost easily, was not directly correlated with methicillin resistance.

Acetylglucosamine↗

Identification in methicillin-susceptible Staphylococcus hominis of an active primordial mobile genetic element for the staphylococcal cassette chromosome mec of methicillin-resistant Staphylococcus aureus.

We previously reported that the methicillin resistance gene mecA is carried by a novel type of mobile genetic element, SCCmec (staphylococcal cassette chromosome mec), in the chromosome of methicillin-resistant Staphylococcus aureus (MRSA). These elements are precisely excised from the chromosome and integrated into a specific site on the recipient chromosome by a pair of recombinase proteins encoded by the cassette chromosome recombinase genes ccrA and ccrB. In the present work, we detected homologues of the ccr genes in Staphylococcus hominis type strain GIFU12263 (equivalent to ATCC 27844), which is susceptible to methicillin. Sequence determination revealed that the ccr homologues in S. hominis were type 1 ccr genes (ccrA1 and ccrB1) that were localized on a genetic element structurally very similar to SCCmec except for the absence of the methicillin-resistance gene, mecA. This genetic element had mosaic-like patterns of homology with extant SCCmec elements, and we designated it SCC(12263) and considered it a type I staphylococcal cassette chromosome (SCC). The ccrB1 gene identified in the S. hominis strain is the first type 1 ccrB gene discovered to retain its function through the excision process as judged by two criteria: (i) SCC(12263) was spontaneously excised during cultivation of the strain and (ii) introduction of the S. hominis ccrB1 into an MRSA strain carrying a type I SCCmec whose ccrB1 gene is inactive generated SCCmec excisants at a high frequency. The existence of an SCC without a mec determinant is indicative of a staphylococcal site-specific mobile genetic element that serves as a vehicle of transfer for various genetic markers between staphylococcal species.

Amino Acid Sequence↗

Cell wall thickening is a common feature of vancomycin resistance in Staphylococcus aureus.

We have previously shown that a thickened cell wall is responsible for the vancomycin resistance of vancomycin-resistant Staphylococcus aureus (VRSA) (equivalent to vancomycin-intermediate S. aureus and glycopeptide-intermediate S. aureus) strain Mu50 (L. Cui, H. Murakami, K. Kuwahara-Arai, H. Hanaki, and K. Hiramatsu, Antimicrob. Agents Chemother. 44:2276-2285, 2000). However, the mechanism of vancomycin resistance in other VRSA strains remained unclear. In this study, 16 clinical VRSA strains from seven countries were subjected to serial daily passage in drug-free medium. After 10 to 84 days of passage in the nonselective medium, passage-derived strains with decreased MICs of vancomycin (MIC, <4 mg/liter) were obtained. However, all of the passage-derived strains except one (15 of 16) still possessed subpopulations that were resistant to vancomycin as judged by population analysis, and vancomycin-resistant mutant strains were selected from the passage-derived strains by one-step vancomycin selection with a frequency of 4.25 x 10(-6) to 1.64 x 10(-3). The data indicated that vancomycin-resistant cells are frequently generated from the passage-derived strains even after vancomycin selective pressure is lifted. Cell wall thicknesses and MICs of glycopeptides (vancomycin and teicoplanin) and beta-lactams (imipenem and oxacillin) were determined for a total of 48 strains, including 15 sets of three strains: the clinical VRSA strain, the passage-derived strain, and the vancomycin-resistant mutant strain obtained from the passage-derived strain. No simple correlation between glycopeptide and beta-lactam MICs was seen, while significant correlations between MICs of vancomycin and teicoplanin (r = 0.679; P < 0.001) and between MICs of imipenem and oxacillin (r = 0.787; P < 0.001) were recognized. Moreover, all of the VRSA strains had significantly thickened cell walls, which became thinner with the loss of vancomycin resistance during drug-free passages and again became thick in the resistant mutant strains. The data showed that cell wall thickness had high correlation with the MICs of the two glycopeptides (correlation coefficients, 0.908 for vancomycin and 0.655 for teicoplanin) but not with those of the beta-lactam antibiotics tested. These results together with coupled changes of cell wall thickness and vancomycin MICs in 16 isogenic sets of strains indicate that thickening of the cell wall is a common phenotype of clinical VRSA strains and may be a phenotypic determinant for vancomycin resistance in S. aureus.

Anti-Bacterial Agents↗

[Staphylococcus].

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Community-Acquired Infections↗

A novel methicillin-resistance cassette in community-acquired methicillin-resistant Staphylococcus aureus isolates of diverse genetic backgrounds.

Until recently, it has been unclear whether community-acquired (CA) methicillin-resistant Staphylococcus aureus (MRSA) isolates represent the spread of hospital MRSA isolates into the community. In 2 CA-MRSA isolates, a novel genetic element, designated staphylococcal cassette chromosome mec (SCCmec) type IV, was found; it differs from SCCmec types I-III in its small size and absence of non-beta-lactam genetic-resistance determinants. To study the prevalence of type IV SCCmec, polymerase chain reaction characterization of SCCmec was performed on DNA from 12 CA-MRSA isolates. The 12 CA-MRSA isolates were from diverse genetic backgrounds, as evidenced by their stratification into 5 pulsed-field gel electrophoresis types, 4 coagulase types, and 2 ribotypes. Eleven of the 12 isolates contained the novel SCCmec type IV element. Ten were resistant only to beta-lactam antibiotics. SCCmec type IV is present on the genome of CA-MRSA isolates. Its relatively small size and presence in isolates of diverse genetic backgrounds suggest that it may spread among S. aureus isolates.

Community-Acquired Infections↗

Genome and virulence determinants of high virulence community-acquired MRSA.

BACKGROUND: A new type of meticillin-resistant Staphylococcus aureus (MRSA), designated community-acquired MRSA, is becoming increasingly noticeable in the community, some strains of which cause fatal infections in otherwise healthy individuals. By contrast with hospital-acquired MRSA, community-acquired MRSA is more susceptible to non b-lactam antibiotics. We investigated the high virulence potential of certain strains of this bacterium. METHODS: We ascertained the whole genome sequence of MW2, a strain of community-acquired MRSA, by shotgun cloning and sequencing. MW2 caused fatal septicaemia and septic arthritis in a 16-month-old girl in North Dakota, USA, in 1998. The genome of this strain was compared with those of hospital-acquired MRSA strains, including N315 and Mu50. FINDINGS: Meticillin resistance gene (mecA) in MW2 was carried by a novel allelic form (type IVa) of staphylococcal cassette chromosome mec (SCCmec), by contrast with type II in N315 and Mu50. Type IVa SCCmec did not carry any of the multiple antibiotic resistance genes reported in type II SCCmec. By contrast, 19 additional virulence genes were recorded in the MW2 genome. All but two of these virulence genes were noted in four of the seven genomic islands of MW2. INTERPRETATION: MW2 carried a range of virulence and resistance genes that was distinct from those displayed on the chromosomes of extant S aureus strains. Most genes were carried by specific allelic forms of genomic islands in the MW2 chromosome. The combination of allelic forms of genomic islands is the genetic basis that determines the pathogenicity of medically important phenotypes of S aureus, including those of community-acquired MRSA strains.

Bacterial Proteins↗

Emergence of vancomycin resistance during therapy against methicillin-resistant Staphylococcus aureus in a burn patient--importance of low-level resistance to vancomycin.

OBJECTIVES: Staphylococcus aureus with low-level resistance to vancomycin (VLSA) which could develop into vancomycin-resistant S. aureus (VRSA) is most important. However, VLSA is difficult to detect by standard laboratory methods. We describe here improved methods to detect VLSA. METHODS: Three methicillin-resistant S. aureus (MRSA) strains, designated Fu6, Fu10, and Fu18, were sequentially isolated from the burn wound site of a patient, during vancomycin therapy. The properties of these strains were compared with those of reference strains Mu3 and Mu50 (previous resistant isolates from other patients). RESULTS: The isolated strains, Fu10 and Fu18, had identical phenotypes and genotypes. The vancomycin resistance of Fu10 was equivalent to that of strain Mu3, whereas Fu18 had much higher vancomycin resistance than Fu10 and Mu3, although reaching the level of Mu50. Fu18 showed similar growth to Mu50 on gradient gels and on Mu3 medium. CONCLUSIONS: Our data indicate that the VLSA developed vancomycin resistance during exposure to vancomycin in vivo. The population analysis of tested VLSA and vancomycin intermediately resistant S. aureus (VISA) indicates that a penem at relatively low concentrations induced a significant increase in the number of vancomycin-resistant subpopulations. Furthermore, we confirmed that gradient gel analysis and Mu3 medium are simple and useful methods for the detection of VLSA judged as VSSA by its conventional MIC alone.

Anti-Bacterial Agents↗

Molecular genetics of methicillin-resistant Staphylococcus aureus.

A large and growing proportion of Staphylococcus aureus clinical isolates are methicillin resistant, and are resistant to practically all beta-lactam antibiotics. Methicillin-resistant S. aureus (MRSA) strains harbor mecA, which is carried by a unique mobile genetic element, staphylococcal cassette chromosome mec (SCCmec) integrated into the S. aureus chromosome. The mecA gene encodes a methicillin-insensitive transpeptidase, the production of which confers resistance to otherwise inhibitory concentrations of beta-lactam antibiotics. Several distinct clones have been identified among MRSA that apparently have been generated by integration of distinct types of SCCmec. While MRSA are primarily nosocomial pathogens, recent observations indicate that other MRSA clones are colonizing a significant proportion of healthy individuals in the community as well. Community-acquired MRSA (C-MRSA), may become a new threat to humans, and international cooperation of researchers and clinicians will be of cardinal importance in addressing this problem.

Bacterial Proteins↗

New trends in Staphylococcus aureus infections: glycopeptide resistance in hospital and methicillin resistance in the community.

PURPOSE OF REVIEW: Methicillin-resistant Staphylococcus aureus is prevalent in hospitals throughout the world, and we have got used to its presence in daily clinical practice. However, methicillin-resistant S. aureus has not remained static over the past four decades, but seems to be evolving in unfamiliar directions. This review focuses on recent findings on two directions of methicillin-resistant S. aureus evolution: the acquisition of multiple antibiotic resistance in the hospital and the trend towards methicillin-resistant S. aureus as a community pathogen. RECENT FINDINGS: We looked at reports on glycopeptide resistance in S. aureus and those on community-acquired methicillin-resistant S. aureus strains, with some references of historical value to explain the entire picture of this 'new field' of the methicillin-resistant S. aureus problem. SUMMARY: The references given here (excluding some of low credibility) attest the increasing awareness of the two conspicuous problems concerning methicillin-resistant S. aureus infection. One is the increasing trend of glycopeptide-resistance, making difficult the successful treatment of multi-drug-resistant methicillin-resistant S. aureus infection in the hospital. On the other hand, non-multi-drug-resistant methicillin-resistant S. aureus strains are emerging as novel threats in the community, the genetic analysis of which indicates that they are independent clones from those found in hospitals.

Anti-Bacterial Agents↗

Novel type of staphylococcal cassette chromosome mec identified in community-acquired methicillin-resistant Staphylococcus aureus strains.

We identified a new type of staphylococcal cassette chromosome mec (SCCmec) from two community-acquired methicillin-resistant Staphylococcus aureus (MRSA) strains. The novel element, designated type IV SCCmec, had a unique combination of the class B mec gene complex and the type 2 ccr gene complex and was much smaller in size (21 to 24 kb) than previously identified SCCmec elements of hospital-acquired MRSA. Consistent with the strains' susceptibilities to various non-beta-lactam antibiotics, the type IV SCCmec was devoid of any antibiotic resistance genes other than the mecA gene.

Anti-Bacterial Agents↗

Enumeration of Legionella CFU by colony hybridization using specific DNA probes.

Oligonucleotide probes and colony hybridization (CH) were applied to enumerate organisms of the genus Legionella in cooling tower water. The CH counts indicated almost the same results as CFU counts in cultivated samples derived from the water. It was concluded that it is possible to substitute the CH procedure for the conventional one.

Colony Count, Microbial↗

Dissemination of new methicillin-resistant Staphylococcus aureus clones in the community.

Multiple methicillin-resistant Staphylococcus aureus (MRSA) clones carrying type IV staphylococcal cassette chromosome mec were identified in the community-acquired MRSA strains of both the United States and Australia. They multiplied much faster than health-care-associated MRSA and were resistant to fewer non-beta-lactam antibiotics. They seem to have been derived from more diverse S. aureus populations than health-care-associated MRSA strains.

Anti-Bacterial Agents↗

Nosocomial spread of a Staphylococcus capitis strain with heteroresistance to vancomycin in a neonatal intensive care unit.

A premature infant in a neonatal intensive care unit (NICU) developed a bloodstream infection caused by coagulase-negative staphylococci (CoNS) sensitive to vancomycin. The infection persisted for 3 weeks, despite therapy with vancomycin and replacement of all intravenous catheters. The neonate died due to necrotizing enterocolitis which developed during the ongoing sepsis. We screened this strain and 216 other strains of CoNS from cultures of blood obtained from neonates between 1997 and 2000 for heteroresistance to vancomycin. Forty-eight isolates, including the strain that caused ongoing sepsis, proved heteroresistant. All isolates were identified as Staphylococcus capitis and were identical, just as their resistant stable subcolonies were, when they were genetically fingerprinted by amplified-fragment length polymorphism analysis. The heteroresistant phenotype of this endemic strain was confirmed by population analysis. We conclude that heteroresistance to vancomycin occurs in S. capitis and might be the cause of therapeutic failures in NICUs. Moreover, heteroresistant strains can become endemic in such units.

Cross Infection↗

[beta-lactamase-producing activity and antimicrobial susceptibility of major pathogenic bacteria isolated from clinical samples. Japan beta-lactamase Research Group].

beta-Lactamase production and susceptibility to an assortment of antimicrobial agents were examined in 9,483 strains of organisms isolated from clinical materials obtained from inpatients and outpatients at 104 institutions throughout Japan from December 1999 to February 2000. The organisms were Staphylococcus aureus, 1,369 strains, including 847 methicillin-resistant (MRSA) strains; Enterococcus faecalis, 735 strains; Enterococcus faecium, 302 strains; Moraxella (Branhamella) catarrhalis, 730 strains; Haemophilus influenzae, 1,142 strains; Escherichia coli, 1,276 strains; Klebsiella pneumoniae, 1,058 strains; Enterobacter cloacae, 772 strains; Serratia marcescens, 847 strains; and Pseudomonas aeruginosa, 1,252 strains. The 23 antimicrobial agents used were ampicillin, sulbactam/ampicillin, clavulanic acid/amoxicillin, oxacillin, piperacillin, cefazolin, cefotiam, cefmetazole, cefoperazone, sulbactam/cefoperazone, cefotaxime, ceftazidime, cefepime, cefpodoxime, imipenem, gentamicin, arbekacin, clarithromycin, minocycline, chloramphenicol, vancomycin, teicoplanin, and levofloxacin. Antimicrobial agents appropriate for each organism were used. Among S. aureus strains, 61.9% were MRSA, and 62.3% were positive for beta-lactamase. Among the MRSA strains, none was resistant to vancomycin or teicoplanin, and only 3% were resistant to arbekacin. There was no vancomycin resistance in the Enterococcus strains. Only 0.1% of E. faecalis strains were ampicillin-resistant. Among the M. catarrhalis strains, 97.5% produced beta-lactamase, while among the H. influenzae strains, 8.5% produced beta-lactamase and 14.5% were beta-lactamase-negative and ampicillin-resistant (BLNAR). Among the Enterobacteriaceae and P. aeruginosa strains, there were 20 (E. coli; 7/1,276, K. pneumoniae; 13/1,058) that produced extended-spectrum beta-lactamases (ESBLs), and 11 that produced class B beta-lactamases. Multiple drug resistance was advanced in every species, and organisms resistant to 7 or more common antimicrobial agents were isolated. The best combination of antimicrobial agent and beta-lactamase inhibitor was sulbactam/cefoperazone. Sulbactam/cefoperazone, cefepime, and imipenem still have excellent antimicrobial activity. Rates of resistance to each antimicrobial agent differed more among institutions than among geographical regions.

Bacteria↗