The outer cell-wall membrane of Pseudomonas aeruginosa.
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A method is described for the preparation of outer and cytoplasmic membranes of Pseudomonas aeruginosa, and the outer membrane proteins characterized. Isolated outer and cytoplasmic membranes differed markedly in the content of 2-keto-3-deoxyoctonate (lipopolysaccharide) and phospholipid as well as in the localization of certain enzymes (NADH oxidase, succinate dehydrogenase, D-lactate dehydrogenase, malate dehydrogenase, and phospholipase), and also in the microscopic morphology. The outer membrane preparation showed activity neutralizing a certain bacteriocin or bacteriophages, whereas the cytoplasmic membrane preparation showed no neutralizing activity. The protein composition of membrane preparations from five different strains of P. aeruginosa [P14, M92 (PAO1), PAC1, P15, and M2008 (PAT)] were determined by sodium dodecyl sulfate (SDS)-polyacrylamide gel electrophoresis. More than 50 protein bands were detected in the cytoplasmic membrane preparation. The protein compositions of outer membranes from the five different strains were very similar: at least 6 major bands were found (apparent molecular weights: Band D, 50,000; band E, 45,000; band F, 33,000; bands G and H, 21,000; and band I, 8,000). The protein composition of outer membranes was affected by some physiological growth conditions. Some features of major outer membrane proteins were also studied. Band F showed anomalous migration on SDS polyacrylamide gel electrophoresis depending on the solubilizing conditions or pretreatment with TCA. Band I seemed to be a protein analogous to the lipoprotein which had been found in the outer membrane of Escherichia coli.
Pseudomonas aeruginosa was successfully transformed from a pyomelanin-producing strain to a non-pyomelanin-producing strain by genetic transformation, with an average frequency of 1.17 X 10-3/recipient. Although the transformation frequency was not affected by doses of DNA between 17 and 51 microgram/ml, it was influenced by the growth phase of the recipient bacteria, i.e., it was highest in the late logarithmic phase. Biochemical functions of the transformants were the same as those of the recipient strain except for pyomelanin production. Some of them, however, showed an intermediate growth behavior and cell arrangement between the donor and recipient. The serological type of the donor strain was sometimes contransduced although a few transformants became nonagglutinable with either donor or recipient type antiserum. The pyomelanin producing activity and serological type gained of some transformants were eliminated by either subculturing in nutrient broth or acridine treatment. The results obtained suggested that the pyomelanin productivity of P. aeruginosa is controlled by a plasmid.
Following the use of amikacin as the principal aminoglycoside at a Denver hospital, amikacin resistance appeared first in Pseudomonas aeruginosa and then in Escherichia coli, Klebsiella pneumoniae, and other enteric organisms from debilitated and compromised patients who had spent time in intensive care units and who had been treated with multiple antibiotics, usually including amikacin. In a P. aeruginosa isolate, resistance to amikacin and tobramycin was transferable by the IncP-2 plasmid pMG77, while in E. coli and K. pneumoniae resistance was carried by the transmissible plasmids pMG220, pMG221, and pMG222 belonging to the IncM group. Isolates and transconjugants produced an enzyme with adenyltransferase activity with substrates having a 4'-hydroxyl group, such as amikacin, kanamycin, neomycin, Sch 21768, isepamicin (Sch 21420), or tobramycin, but not with aminoglycosides lacking this target, such as dibekacin, netilmicin, sisomicin, or gentamicin C components. Genes encoding the 4'-aminoglycoside nucleotidyltransferase [ANT(4')] activity were cloned from pMG77, pMG221, and pMG222. A DNA probe prepared from the ANT(4') found in P. aeruginosa hybridized with the ANT(4') determinant found in E. coli. A probe for the ANT(4') from Staphylococcal spp., which differs in its modification of substrates, like dibekacin, that have a 4"- but not a 4'-hydroxyl group, failed to hybridize with the gram-negative ANT(4') determinant, which consequently has been termed ANT(4')-II.
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Microorganisms are engaged in a never-ending arms race. One consequence of this intense competition is the diversity of antimicrobial compounds that most species of bacteria produce. Surprisingly, little attention has been paid to the evolution of such extraordinary diversity. One class of antimicrobials, the bacteriocins, has received increasing attention because of the high levels of bacteriocin diversity observed and the use of bacteriocins as preservatives in the food industry and as antibiotics in the human health industry. However, little effort has been focused on evolutionary questions, such as what are the phylogenetic relationships among these toxins, what mechanisms are involved in their evolution, and how do microorganisms respond to such an arsenal of weapons? The focus of this review is to provide a detailed picture of our current understanding of the molecular mechanisms involved in the process of bacteriocin diversification.
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The authors have compared the antimicrobial resistance patterns and plasmid profiles of Gram-negative isolates in an intensive care unit over a 7-month period in order to identify epidemiologically related isolates. Bacterial plasmids were found to be valuable markers for the comparison of strains of nosocomial Gram-negative bacilli. Thirty-nine mechanically ventilated patients in an ICU were included. From bronchoaspiratus, the authors isolated 58 strains of Gram-negative bacilli (24 Ps. aeruginosa and 34 Enterobacteria). Common plasmids were found in most Enterobacteria. The interspecies plasmid exchange suggests that interstate spread of these strains may have occurred. Twenty-six Enterobacteria carried plasmids, 11 of which proved transmissible. The R-factors were transferred to other genera that were isolated in the hospital, thereby adding to the pool of multiresistant nosocomial isolates. Larger plasmids transferred ampicillin and carbenicillin resistance, while gentamycin and cephalotin resistance was carried by smaller plasmids. Only 4 Ps. aeruginosa carried plasmids, one of which was transmissible. Pseudomonas plasmid DNA is extracted with difficulty by the simple lysis method, due to the roughness of the colonies. All Pseudomonas isolates belonged to the same biotype which can be regarded as an epidemiological marker. Therefore, plasmid profiling is a useful tool for epidemiological surveillance of Enterobacteria and is a good method for determining the relatedness of isolates in a nosocomial environment.
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Bacteriocins are protein or protein-complex antibiotics produced by a wide variety of bacterial species. By conventional definition, bacteriocins differ from most other antibiotics in that the producer strain is immune to the action of its own bacteriocin and the inhibitory activity of individual bacteriocins is directed only to bacteria which are closely related to the strains which produce them. Bacteriocin production is regulated by plasmid or chromosomal elements and bacteriocin activity is initiated by adsorption of bacteriocin to specific outer membrane receptors on susceptible cells. In Darwinian terms, production of bacteriocin by a bacterial strain, within a particular ecological niche, could be considered advantageous by ensuring elimination of other closely related, and thus competitive, bacteria. In contrast, conservation of bacteriocin receptors appears suicidal if their only function is to initiate cell death. The paper will illustrate the ubiquity of bacteriocins and discuss evidence for their in vivo function in terms of bacterial survival. Evidence will also be presented to indicate that bacteriocin receptors in Escherichia coli and Pseudomonas aeruginosa have important alternative physiological functions in outer-membrane mediated nutrient uptake, particularly with respect to bacterial iron metabolism.
To find out if the transfer of P. aeruginosa infection by droplet route is possible in resuscitation and intensive care units, the bacteriological study of air samples taken in different rooms of resuscitation units (altogether 234 air samples) was carried out with the subsequent identification and typing of isolated P. aeruginosa strains. In most cases (70.5%) the microbial contamination of the air in the main rooms of resuscitation units was found not to exceed 500 microbial cells per cu. m, and no P. aeruginosa strains were isolated. The identification and typing of six P. aeruginosa strains isolated from the air of an isolation ward for patients with infectious complications made it possible to find out intraspecific differences of these microorganisms, as all of them belonged to strains of different sero- and pyocinotypes. Thus, the results of these investigations indicate that the droplet route of the transfer of P. aeruginosa hospital infection is not characteristic of resuscitation and intensive care units, as no P. aeruginosa strains are isolated from the main rooms of such units; likewise, no circulation of this microorganism was observed in the air of an isolation ward for patients with infectious complications.
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