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Adherence of Serratia marcescens, Serratia liquefaciens, Pseudomonas aeruginosa and Staphylococcus epidermidis to blood transfusion bags (CPD-SAGMAN sets).

The adherence of 4 isolates of Serratia marcescens, 1 isolate of Serratia liquefaciens, 1 of Pseudomonas aeruginosa, and 2 of Staphylococcus epidermidis to blood transfusion sets (CPD-SAGMAN) consisting of bags and connecting tubing was tested. All strains adhered well to the connecting tubes (polyvinyl chloride) from the transfusion sets from 3 manufacturers. Three isolates from a Swedish outbreak of septicaemia associated with contaminated blood bags showed greater adherence than an isolate from a urinary tract infection. There was no significant adherence of S. marcescens to the blood bags. In general, there were no significant differences in the adherence of a given isolate to the plastics from different manufacturers. Appropriate hygienic procedures for the production of transfusion sets appear to be of greater importance than differences in the plastic material as regards the incidence of transfusion-related bacteremia.

Bacteremia↗

L-prolineaminopeptidase activity as a tool for identification and differentiation of Serratia marcescens, Serratia liquefaciens and Hafnia alvei strains.

S. marcescens (316 strains), S. liquefaciens (10 strains) and Hafnia alvei (20 strains), in contrast to 18 other Enterobacteriaceae species, hydrolyzed L-proline-4-nitroanilide within 30 min at 37 degrees C. In this way, rapid identification of these species is possible. The substrate is applied in solution or in a paper disc. The substrate optimum of Hafnia alvei strains proved to be 16 times lower than that of the Serratia spp. Application of a tenth of the substrate concentration necessary for identification of Serratia spp. allows a rapid differentiation between the two species.

Aminopeptidases↗

Persistence of Serratia marcescens, Serratia liquefaciens and E. coli in solutions for contact lenses.

Twenty-four different brands of contact lens solutions were experimentally inoculated with strains of S. marcescens, S. liquefaciens and E. coli. Only flexol and hexidin could sufficiently suppress the growth of Serratia strains. If a soaking agent is to be effective in suppressing S. marcescens it must have a chlorhexidine concentration of at least 50 micrograms/ml and a thiomersal concentration of 10 micrograms/ml.

Chlorhexidine↗

Cloning and DNA sequence analysis of a bacteriocin gene of Serratia marcescens.

Serratia marcescens N28b synthesized and secreted a bacteriocin, with a molecular mass of 45 kDa, which was capable of inhibiting the growth of Escherichia coli. The expression of this bacteriocin was negligible unless induced with mitomycin C. The genes encoding the bacteriocin were cloned in plasmid pBR328. E. coli harbouring recombinant plasmid pBA189 or pBA289 expressed the Serratia marcescens N28b bacteriocin. The nucleotide sequence of the bss gene (Serratia marcescens N28b bacteriocin structural gene) was determined. The predicted amino acid sequence of the carboxy-terminal part of the bacteriocin 28b had a high degree of similarity to the pore-forming domains of colicins A, E1, B, N, Ia and Ib.

Amino Acid Sequence↗

pH-dependent modulation of alkaline phosphatase activity in Serratia marcescens.

Serratia marcescens is an opportunistic pathogen responsible for causing nosocomial infections, corneal ulcer, necrotizing fasciitis, cellulites, and brain abscess. Alkaline phosphatase (APase) is believed to play an important role in the survival of several intracellular pathogens and their adaptation. We have studied the effect of low phosphate concentration and acid pH on the APase activities of S. marcescens. In a low phosphate medium, some strains of S. marcescens synthesize two different types of APases, a constitutive (CAPase) and an inducible (IAPase). Both the CAPase and IAPase isoenzymes completely lost their enzyme activities at pH 2.3, within 10 min of incubation at 0 degrees C. Acid-treated IAPase isoenzymes I, II, III, and IV solutions when adjusted to pH 7.8 showed recovery of 70%, 52%, 72%, and 60% of the lost activities, respectively. When the pH of the CAPase reaction mixture was raised to pH 7.8, the enzyme activity regained only 5% of its initial activity. Variations in protein concentration also affected the pH-dependent reversible changes of the IAPase activity. The higher the protein concentration, the faster the inactivation of enzyme activity observed at acidic pH at 0 degrees C. Conversely, the lower the protein concentration, the higher the rate of reactivation of enzyme activity observed for IAPase at alkaline pH. Protein interaction studies revealed a lack of similarity between CAPase and IAPase, suggesting separate genetic origin of these potentially virulent genes of S. marcescens.

Alkaline Phosphatase↗

Excretion of the Escherichia coli alpha-haemolysin by Serratia marcescens.

Serratia marcescens 2170 derivative strains harbouring either the haemolytic plasmid pANN202-312 or pANN202-312R, were able to produce extracellular haemolysin to a greater extent than the corresponding Escherichia coli 5K strains. The haemolysin recovered from S. marcescens cultures supernatants had a molecular weight of 110 kD, and its extracellular production was maximal near the end of the exponential growth phase. The hlyR sequence, which belongs to the haemolytic determinant located in the plasmid pHly152 and enhances haemolysin expression and secretion in E. coli, appeared not to play an equivalent role in S. marcescens.

Blotting, Western↗

Characterization of a cytotoxic factor in culture filtrates of Serratia marcescens.

Serratia marcescens culture filtrates have been reported to be cytotoxic to mammalian cells. Using biochemical and genetic approaches, we have identified a major source of this cytotoxic activity. Both heat and protease treatments abrogated the cytotoxicity of S. marcescens culture filtrates towards HeLa cells, suggesting the involvement of one or more protein factors. A screen for in vitro cytotoxic activity revealed that S. marcescens mutant strains that are deficient in production of a 56-kDa metalloprotease are significantly less cytotoxic to mammalian cells. Cytotoxicity was significantly reduced when culture filtrates prepared from wild-type strains were pretreated with either EDTA or 1,10-phenanthroline, which are potent inhibitors of the 56-kDa metalloprotease. Furthermore, cytotoxic activity was restored when the same culture filtrates were incubated with zinc divalent cations, which are essential for enzymatic activity of the 56-kDa metalloprotease. Finally, recombinant expression of the S. marcescens 56-kDa metalloprotease conferred a cytotoxic phenotype on the culture filtrates of a nonpathogenic Escherichia coli strain. Collectively, these data suggest that the 56-kDa metalloprotease contributes significantly to the in vitro cytotoxic activity commonly observed in S. marcescens culture filtrates.

Bacterial Toxins↗

Genetic analysis of extracellular proteins of Serratia marcescens.

Serratia marcescens, a gram-negative enteric bacterium, is capable of secreting a number of proteins extracellularly. The types of activity found in the growth media include proteases, chitinases, a nuclease, and a lipase. Genetic studies have been undertaken to investigate the mechanisms used for the extracellular secretion of these exoproteins by S. marcescens. Many independent mutations affecting the extracellular enzymes were isolated after chemical and transposon mutagenesis. Using indicator media, we have identified loci involved in the production or excretion of extracellular protease, nuclease, or chitinase by S. marcescens. None of the mutations represented general extracellular-excretion mutants; in no case was the production or excretion of multiple exoproteins affected. A variety of loci were identified, including regulatory mutations affecting nuclease and chitinase expression. A number of phenotypically different protease mutants arose. Some of them may represent different gene products required for the production and excretion of the major metalloprotease, a process more complex than that for the other S. marcescens exoproteins characterized to date.

Bacterial Proteins↗

Iron transport systems of Serratia marcescens.

Serratia marcescens W225 expresses an unconventional iron(III) transport system. Uptake of Fe3+ occurs in the absence of an iron(III)-solubilizing siderophore, of an outer membrane receptor protein, and of the TonB and ExbBD proteins involved in outer membrane transport. The three SfuABC proteins found to catalyze iron(III) transport exhibit the typical features of periplasmic binding-protein-dependent systems for transport across the cytoplasmic membrane. In support of these conclusions, the periplasmic SfuA protein bound iron chloride and iron citrate but not ferrichrome, as shown by protection experiments against degradation by added V8 protease. The cloned sfuABC genes conferred upon an Escherichia coli aroB mutant unable to synthesize its own enterochelin siderophore the ability to grow under iron-limiting conditions (in the presence of 0.2 mM 2.2'-dipyridyl). Under extreme iron deficiency (0.4 mM 2.2'-dipyridyl), however, the entry rate of iron across the outer membrane was no longer sufficient for growth. Citrate had to be added in order for iron(III) to be translocated as an iron citrate complex in a FecA- and TonB-dependent manner through the outer membrane and via SfuABC across the cytoplasmic membrane. FecA- and TonB-dependent iron transport across the outer membrane could be clearly correlated with a very low concentration of iron in the medium. Expression of the sfuABC genes in E. coli was controlled by the Fur iron repressor gene. S. marcescens W225 was able to synthesize enterochelin and take up iron(III) enterochelin. It contained an iron(III) aerobactin transport system but lacked aerobactin synthesis. This strain was able to utilize the hydroxamate siderophores ferrichrome, coprogen, ferrioxamine B, rhodotorulic acid, and schizokinen as sole iron sources and grew on iron citrate as well. In contrast to E. coli K-12, S. marcescens could utilize heme. DNA fragments of the E. coli fhuA, iut, exbB, and fur genes hybridized with chromosomal S. marcescens DNA fragments, whereas no hybridization was obtained between S. marcescens chromosomal DNA and E. coli fecA, fhuE, and tonB gene fragments. The presence of multiple iron transport systems was also indicated by the increased synthesis of at least five outer membrane proteins (in the molecular weight range of 72,000 to 87,000) after growth in low-iron media. Serratia liquefaciens and Serratia ficaria produced aerobactin, showing that this siderophore also occurs in the genus Serratia.

Bacterial Outer Membrane Proteins↗

The use of RAPD-PCR as a typing method for Serratia marcescens.

Serratia marcescens has emerged in the last few years as an important nosocomial pathogen. Many methods for typing this organism have been described. In this study the random amplified polymorphic DNA-polymerase chain reaction (RAPD-PCR) was shown to be a convenient typing method for S. marcescens. Different combinations of primers previously used for typing other gram-negative bacilli were assessed. The combination of primer HLWL-74 and 1254 gave distinguishable patterns for different serotypes and proved to be the most satisfactory. By applying this combination to 175 isolates of S. marcescens, which could be classified into 38 groups on the basis of serotyping and phage typing, 73 different RAPD patterns with good reproducibility were obtained. This is, to our knowledge, the first application of the method to a large collection of S. marcescens representing a wide range of serotypes.

Bacteriophage Typing↗

Comparative studies of chitinases A and B from Serratia marcescens.

Serratia marcescens produces several chitinolytic enzymes, including chitinase A (ChiA) and chitinase B (ChiB). In this study, ChiB was purified to homogeneity using a newly developed protocol based on hydrophobic interaction chromatography. Subsequently, characteristics of ChiB and of the hitherto only partly characterized ChiA were determined and compared. Pure ChiA and ChiB shared several characteristics such as a broad pH optimum around pH 5.0-6.0, and a temperature optimum between 50 and 60 degrees C. Both enzymes were fairly stable, with half-lives of more than 10 d at 37 degrees C, pH 6.1. Analyses of the degradation of various N-acetylglucosamine oligomers, fluorogenic substrates and colloidal chitin showed that both enzymes cleave chitobiose [(GlcNAc)2] from (GlcNAc)n and thus possess an exo-N,N'-diacetylchitobiohydrolase activity. Both enzymes were also capable of producing monomers from longer (GlcNAc)n substrates, indicating that they also have an endochitinase (ChiA) or exo-N,N',N"-triacetylchitotriohydrolase (ChiB) activity. Kinetic analyses with 4-methylumbelliferyl-beta-D-N,N'-diacetylchitobioside, an analogue of (GlcNAc)3, showed cooperative kinetics for ChiA, whereas for ChiB normal hyperbolic kinetics were observed. ChiA had a higher specific activity towards chitin than ChiB and synergistic effects on the chitin degradation rate were observed upon combining the two enzymes. These results, together with the results of sequence comparisons and previous studies of the cellular localization of the two chitinases in S. marcescens indicate possible roles for ChiA and ChiB in chitin breakdown.

Amino Acid Sequence↗

Regulation of carbamylphosphate synthesis in Serratia marcescens.

Serratia marcescens HY possessed a single carbamylphosphate synthase (CPSase) which was subject to cumulative repression by arginine and a pyrimidine. CPSase did not appear to be a part of a multifunctional enzyme complex as is the case for other enzymes of pyrimidine biosynthesis in this organism. CPSase was purified to homogeneity. The molecular weight of the enzyme was estimated to be 167,000 by sucrose density gradient ultracentrifugation. The double-reciprocal plot for magnesium adenosine triphosphate was linear, yielding a Km value of 2.5 mM. The enzyme utilized either glutamine (Km, 0.1 mM) or NH3 (Km, 10.5 mM) as a nitrogen donor in the reaction. CPSase activity was subject to activation by ornithine and feedback inhibition by uridine monophosphate, as is the case for other enteric bacteria. Carbamate kinase activity, detected in crude extracts of S. marcescens, was shown to be due to a constitutive acetate kinase. The absence of carbamate kinase from S. marcescens HY is consistent with the inability of this organism to utilize arginine as a source of energy under anaerobic conditions.

Adenosine Triphosphate↗

Serratia marcescens.

Serratia marcescens is now recognized as a serious pathogen and of particular importance in nosocomial infections. Both hand-to-hand and point-source transmission can result in outbreaks. The organism is easily grown and identified in the microbiology laboratory. Treatment may be difficult due to plasmid-mediated resistance. Typing systems are available and can be useful for epidemiologic studies.

Bacterial Infections↗

The effect of O-antigen on transformation efficiency in Serratia marcescens.

Serratia marcescens is an enterobacterium that exhibits very low efficiency of transformation. According to previous work, neither the bacterium restriction system nor its nuclease production accounts for this low efficiency. Differences in the efficiency of transformation from plasmid DNA were found in wild type of S. marcescens and their O-deficient spontaneous mutant strains. This phenomenon seems to be independent of plasmid size. When electroporation was used, the survival of O-mutants was much lower than those of their parental strains, but the frequencies of transformation among survivors were much higher. This suggests that the presence of the O-antigen is responsible for the low transformation frequencies observed.

Cell Membrane↗

The LuxR family protein SpnR functions as a negative regulator of N-acylhomoserine lactone-dependent quorum sensing in Serratia marcescens.

Serratia marcescens SS-1 produces at least four N-acylhomoserine lactones (AHLs) which were identified using high-resolution mass spectrometry and chemical synthesis, as N-(3-oxohexanoyl) homo-serine lactone (3-oxo-C6-HSL), N-hexanoyl- (C6-HSL), N-heptanoyl (C7-HSL) and N-octanoyl- (C8-HSL) homoserine lactone. These AHLs are synthesized via the LuxI homologue SpnI, and regulate via the LuxR homologue SpnR, the production of the red pigment, prodigiosin, the nuclease, NucA, and a biosurfactant which facilitates surface translocation. spnR overexpression and spnR gene deletion show that SpnR, in contrast to most LuxR homologues, acts as a negative regulator. spnI overexpression, the provision of exogenous AHLs and spnI gene deletion suggest that SpnR is de-repressed by 3-oxo-C6-HSL. In addition, long chain AHLs antagonize the biosurfactant-mediated surface translocation of S. marcescens SS-1. Upstream of spnI there is a gene which we have termed spnT. spnI and spnT form an operon and although database searches failed to reveal any spnT homologues, overexpression of this novel gene negatively affected both sliding motility and prodigiosin production.

4-Butyrolactone↗

Effect of some antibiotics on pigmentation in Serratia marcescens.

Serratia marcescens is characterized by its ability to produce a red pigment called prodigiosin. It is well known that there are some substances affecting pigmentation in bacteria. Cefoxitin, erythromycin, tobramycin, co-trimoxazole, imipenem and nitrofurantoin were found to have an inhibitory effect on pigmentation in a S. marcescens strain isolated from urine. It was also shown that the LD50 dose determined by inoculation of eight-week-old BALB/c mice with serial dilutions of overnight cultures of pigmented and nonpigmented variants was lower (LD50 = 300 x 10(3.94)) in the nonpigmented variant than in the pigmented one (LD50 = 300 x 10(5.58)). In addition, the Sereny test showed that in contrast to the pigmented variant, the nonpigmented variant caused keratitis in guinea pig eye.

Animals↗

Pigments and antibiogram of transconjugants from nonpigmented mutants of Serratia marcescens.

Serratia marcescens produces a characteristic red pigment, prodigiosin, which is formed by the enzymatic coupling of 4-methoxy-2,2'-bipyrrole-5-bipyrrole-5-carboxaldehyde (MBC) and 2-methyl-3-amylpyrrole (MAP). Many clinical isolates which are resistant to multiple antibiotics are nonpigmented. However, the relationship of pigmentation (or nonpigmentation) to drug resistance of the strains has not yet been established. In this study we demonstrated the pigment synthesizing capability in the transconjugants obtained from nonpigmented mutants WF and 9-3-3 of S. marcescens under the condition of cell-to-cell contact. Mutant WF produces MAP while mutant 9-3-3 synthesized only MBC. After genetic transfer, the color of the recombinant colonies was red indicating the successful transfer of the pigment synthesizing capability. The antibiogram of the transconjugants indicated that they inherited the resistance characteristics to polymyxin B and chloramphenicol from their parent strains. further supportive evidence was obtained by spectroscopic and high performance liquid chromatographic analysis of the resulting pigments extracted from the pigmented transconjugants. The pigments produced by the transconjugants were similar, if not identical, to those produced by the wild type strain 08 and those synthesizes syntrophically. The possibility of simultaneous transfer of pigment synthesizing capability and drug resistance remains to be explored .

Conjugation, Genetic↗