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Cloning and characterization of the streptothricin-resistance gene which encodes streptothricin acetyltransferase from Streptomyces lavendulae.

The streptothricin-resistance gene of Streptomyces lavendulae No. 1080 was cloned in S. lividans using pIJ41 as a vector. From subcloning experiments, the 1.6 kb BamH I fragment was determined to encode the structural gene. The cell extracts of S. lividans carrying the gene on the plasmid pKS7 had activity to inactivate streptothricin in the presence of S-acetyl coenzyme A, indicating that the gene product was streptothricin acetyltransferase.

Acetyltransferases↗

Purification and biochemical characterization of streptothricin acetyltransferase coded by the cloned streptothricin-resistance gene of Streptomyces lavendulae.

Streptothricin acetyltransferase was purified from Streptomyces lividans harboring a plasmid which carried the streptothricin-resistance gene cloned from a streptothricin-producing strain, Streptomyces lavendulae No. 1080. Some properties of the enzyme were determined and the reaction product was identified to be N beta-acetylstreptothricin by NMR spectroscopy.

Acetyltransferases↗

A novel enzyme conferring streptothricin resistance alters the toxicity of streptothricin D from broad-spectrum to bacteria-specific.

Streptothricins (STs) produced by Streptomyces strains are broad-spectrum antibiotics. All STs consist of a carbamoylated D-gulosamine to which the beta-lysine homopolymer (1 to 7 residues) and the amide form of the unusual amino acid streptolidine (streptolidine lactam) are attached. Although many ST-resistance genes have been identified in bacteria, including clinically isolated pathogens and ST-producing Streptomyces strains, only one resistance mechanism has been identified to date. This mechanism involves the modification of the ST molecule by monoacetylation of the moiety of the beta-lysine(s). In this study, we successfully isolated a novel ST-resistance gene (sttH) from Streptomyces albulus, which is a known ST nonproducer. The in vitro analysis of SttH demonstrated that this enzyme catalyzes the hydrolysis of the amide bond of streptolidine lactam, thereby conferring ST resistance. Interestingly, the selective toxicity of ST-D possessing 3x beta-lysine moiety was altered from broad-spectrum to bacteria-specific by the hydrolysis of streptolidine lactam, although ST-F (1 x beta-lysine) was detoxified by SttH in both prokaryotes and eukaryotes (yeasts). STs have not been clinically developed due to their toxicities; however, in this study, we showed that hydrolyzed ST-D (ST-D-acid) exhibits potent antibacterial activity even when its toxicity against eukaryotic cells is reduced by SttH. This suggests that ST-D-acid is a potential candidate for clinical development or for use as a new lead compound for drug discovery.

Bacterial Proteins↗

[A new HPLC method for determination of main constituents of the streptothricin complex. Analysis of nourseothricin, grisin and kormogrisin].

A simple and reliable HPLC method for quantitative analysis of complex antibiotics consisting of a mixture of streptothricins F, E, D and C in a biological matrix was developed. The method is based on ion-pair separation of streptothricins on the reversed-phase C18 analytical column with UV detector (210 nm). Aqueous solution of acetonitrile containing trifluoroacetic acid and octane-1-sulfonic acid sodium salt was used as eluent. Retention times of streptothricins became longer as the molecular weight increased, i.e. the component F was eluted first, then followed components E, D and C. The total time of the analysis was ca. 22 min. Composition of the standard samples of nourseothricin and grisin, as well as the streptothricin content of the commercial grisin-based kormogrisin were determined. Components F and D were found to be dominant in the streptothricin complex comprising totally 70-90%, with streptothricin F prevailing in nourseothricin (56%) and streptothricin D being the major constituent in grisin (51%), while in the kormogrisin the concentrations of components D and F were approximately the same. The portion of E varied from 5 to 20% and the concentration of streptothricin C changed within the range of 3-11%. The peaks of the admixtures present in kormogrisin did not interfere with determination of the streptothricin components. It is suggested that the method described can be applied to determination of the streptothricins in biological objects without a complex preliminary sample preparation.

Chromatography, High Pressure Liquid↗

DNA probes for studying streptothricin resistance evolution in enteric bacteria.

Probes for the detection of streptothricin resistance genes have been derived from recombinant plasmids. These include the streptothricin resistance gene probe sat 1/2 derived from Tn 1826 and specific for both the sat-1 determinant of Tn 1825 and the sat-2 determinant of Tn 1826, and the probe sat D derived from and specific for the sat-1 determinant of transposon Tn 1825. A third streptothricin resistance gene probe, sat 3, represents the streptothricin resistance determinant sat-3 of the IncQ R plasmid pIE639. Hybridization studies did not reveal any sequence homology between sat-3 and the transposon-localized sat-1 and sat-2 determinants. Moreover, non of the different sat-determinants isolated from plasmids of gram negative bacteria hybridized with the analogous resistance determinant of Streptomyces noursei, which had been cloned and named nat by Krügel et al. (Gene, 1988, 62, 209-214). The sat 1/2 probe in combination with the sat D probe proved to be suitable for the identification and the differentiation of sat-1 and sat-2 determinants in different genetic environments. Streptothricin resistance genes related to those present on transposons Tn 1825 and Tn 1826 have been detected by hybridization with the probe sat 1/2 on plasmids isolated a long time ago before the application of streptothricins. The sat-3 determinant appears to be exclusively associated with the IncQ plasmid pIE639.

Aminoglycosides↗

[The sat4 streptothricin acetyltransferase gene of Campylobacter coli: its distribution in the environment and use as epidemiological marker].

The main of this study is to give evidence about the spread of streptothricin resistance within Campylobacters which were isolated from animals, men and environmental sources. Streptothricin resistant Campylobacters were isolated over a five years period, when the use of streptothricin for ergotropic purposes was not allowed, from slurry of swine, slurry of cattle, waste water of a goose farm and waste water of a communal sewage treatment plant. The streptothricin resistance was found to be connected with resistances to kanamycin and streptomycin (MIC > 1024 micrograms/ml). For DNA-DNA-hybridisation we used a gene probe derived from the streptothricin acetyltransferase determinant sat4 from Campylobacter coli to find out epidemiological associations between Campylobacters of different origin. The hybridisation experiments show that all streptothricin resistant strains, which were isolated from one ecosystem or where an epidemiological link seems given, have sat4 positive signals at identical positions of the digested and blotted chromosomal DNA. The detection of the sat4 gene seems to be a good tool to discriminate clonal diversities within multiple antibiotic resistant Campylobacters.

Acetyltransferases↗

Bacterial resistance to streptothricins.

Resistance to streptothricin was studied in bacteria with different resistance mechanisms. The laboratory-induced streptothricin-resistant mutant E. coli A19 Stcr 2/2/1 showed a high level of cross-resistance to aminoglycosides and other miscoding inducing antibiotics. In contrast, aminoglycosid-resistant E. coli strains with plasmid-determined aminoglycoside modifying enzymes were sensitive to streptothricin. Enzymatic inactivation of streptothricin by acetylation was demonstrated for the streptothricin producing Streptomyces noursei, strain NG13. This strain showed no cross-resistance to miscoding inducing aminoglycosides.

Acetylation↗

Cloning and preliminary characterization of the streptothricin resistance determinants of the transposons Tn1825 and Tn1826.

Streptothricin resistance determinants have been cloned from the transposons Tn1825 and Tn1826 to the vector plasmid pUC8. The recombinant plasmids were characterized with respect to their physical structure. The resistance properties of their hosts were characterized with respect to the minimal inhibitory concentration of streptothricin and the activity of the streptothricin acetyltransferase. The proteins encoded by the cloned resistance determinants were analysed in a maxicell system. The results of our investigations suggest that the resistance to streptothricin is mediated by the activity of a streptothricin acetyltransferase with both, Tn1825 and Tn1826. However, the resistance determinant of Tn1825 is more complex than Tn1826 and additional functions involved in realizing the resistance phenotype must be recognized.

Acetyltransferases↗

Nourseothricin (streptothricin) inactivated by a plasmid pIE636 encoded acetyl transferase of Escherichia coli: location of the acetyl group.

Escherichia coli strains harbouring the plasmid pIE636 are able to synthesize acetylcoenzyme A: streptothricin acetyltransferase (ACSAT). The (enzymatic) N-acetylation of streptothricin F is known to contribute significantly towards the loss of antibacterial activity. 13C-NMR analysis of [14C]N-acetyl-labelled streptothricin F, produced by ACSAT-catalysed acetylation of streptothricin F and subsequent purification by various chromatographical steps, unequivocally revealed streptothricin F to be acetylated at the beta-amino group (C16) (and not at the epsilon-amino group (C19)).

Acetylation↗

Streptothricin biosynthesis is catalyzed by enzymes related to nonribosomal peptide bond formation.

In a search for strains producing biocides with a wide spectrum of activity, a new strain was isolated. This strain was taxonomically characterized as Streptomyces rochei F20, and the chemical structure of the bioactive product extracted from its fermentation broth was determined to be a mixture of streptothricins. From a genomic library of the producer strain prepared in the heterologous host Streptomyces lividans, a 7.2-kb DNA fragment which conferred resistance to the antibiotic was isolated. DNA sequencing of 5.2 kb from the cloned fragment revealed five open reading frames (ORFs) such that ORF1, -2, -3, and -4 were transcribed in the same direction while ORF5 was convergently arranged. The deduced product of ORF1 strongly resembled those of genes involved in peptide formation by a nonribosomal mechanism; the ORF2 product strongly resembled that of mphA and mphB isolated from Escherichia coli, which determines resistance to several macrolides by a macrolide 2'-phosphotransferase activity; the ORF3 product had similarities with several hydrolases; and the ORF5 product strongly resembled streptothricin acetyltransferases from different gram-positive and gram-negative bacteria. ORF5 was shown to be responsible for acetyl coenzyme A-dependent streptothricin acetylation. No similarities in the databases for the ORF4 product were found. Unlike other peptide synthases, that for streptothricin biosynthesis was arranged as a multienzymatic system rather than a multifunctional protein. Insertional inactivation of ORF1 and ORF2 (and to a lesser degree, of ORF3) abolishes antibiotic biosynthesis, suggesting their involvement in the streptothricin biosynthetic pathway.

Acetyl Coenzyme A↗

[Isolation of streptothricin resistant mutants from E coli K12, strain A19].

Mutants with various levels of resistance to streptothricin were isolated from Escherichia coli K12, strain A19 after mutagenesis with N-methyl-N-nitro-N-nitroso-guanidine and ethylmethane-sulfonate. Nourseothricin, a mixture of streptothricin F and D was the selection agent. Spontaneous resistant mutants could not be found. The streptothricin-resistant mutant E. coli A19 Stcr 2/2/1 shows cross-resistance to some of the aminoglycoside antibiotics investigated, but no cross-resistance to chloramphenicol and chlortetracyclin. These results indicate similar mechanisms of action of streptothricin and aminoglycoside antibiotics.

Anti-Bacterial Agents↗

The occurrence of high-level streptothricin resistance in thermotolerant campylobacters isolated from the slurry of swine and the environment.

This is the first report on the occurrence of streptothricin resistance (MIC > 400 micrograms/ml) in Campylobacter spp. The majority of resistant strains has been typed as C. coli by biotyping and SDS disc electrophoresis of bacterial whole cell proteins. The resistance to streptothricin was strongly connected with resistance to kanamycin (100%) and tetracycline (80%). As an important source of streptothricin-resistant Campylobacter strains we localized slurry of swine previously fed with feed containing streptothricins. Additionally, such strains could also be isolated from river water.

Animals↗

Characterization of the sat4 gene encoding a streptothricin acetyltransferase in Campylobacter coli BE/G4.

The sat4 streptothricin resistance gene from Campylobacter coli BE/G4 was cloned into pUC18, and its nucleotide sequence was determined. Streptothricin acetyltransferase activity was detected in Escherichia coli cells containing recombinant plasmid pAT132 which carries the sat4 gene as an insert. The deduced amino acid sequence displayed 21-27% amino acid identity with streptothricin acetyltransferases from E. coli and streptothricin producers Streptomyces lavendulae and Streptomyces noursei. The sat4 gene was detected by hybridization in clinical and environmental isolates of Campylobacter spp.

Acetyltransferases↗

Streptothricin F, an inhibitor of protein synthesis with miscoding activity.

The effect of streptothricin F on macromolecular syntheses in intact cells and cell-free protein synthesis of E. coli was studied. The results indicate that protein synthesis is the primary site of inhibition by streptothricin F in growing E. coli cells. Cell-free polypeptide synthesis from E. coli directed by poly (U) was inhibited, while poly (A) and poly (C) directed polypeptide syntheses were both stimulated by the drug. Furthermore, streptothricin F caused misreading of translation of poly (U), poly (A) and poly (C) directed protein syntheses in E. coli systems. The extent of misreading by streptothricin F increases with increasing drug concentrations. The results are compared with those of other miscoding antibiotics. In rat liver extracts protein directed by poly (U) or endogenous mRNA was not inhibited.

Animals↗

Action of streptothricin F on ribosomal functions.

The effect of streptothricin F on elongation factor-dependent and on elongation factor-free translation systems was studied. Streptothricin F inhibits factor-dependent as well as factor-free polypeptide synthesis. The results suggest that streptothricin F inhibits polypeptide synthesis via interaction with the ribosome. In partial reactions streptothricin F impairs EF-G-dependent translocation and to a lesser extent EF-Tu-dependent binding of aa-RNA to the ribosome, while it does not affect peptide bond formation significantly.

Anti-Bacterial Agents↗