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1. Kim  H, Kim  SH, Ying  YH, Kim  HJ, Koh  YH, Kim  CJ, Lee  SH, Cha  CY, Kook  YH, Kim  BJ,     ( 2005 )

Mechanism of natural rifampin resistance of Streptomyces spp.

Systematic and applied microbiology 28 (5)
PMID : 16094866  :   DOI  :   10.1016/j.syapm.2005.02.009    
Abstract >>
In a previous phylogenetic study of the genus Streptomyces using the rpoB gene, N531, which stands for an aspargine residue in position 531 of RpoB instead of serine (S531), known to be associated with natural rifampin resistance in several organisms, was also observed in the RpoB of several Streptomyces species. To determine whether N531 is associated with the rifampin resistance of Streptomyces strains, we analyzed the rifampin minimum inhibitory concentrations (MICs) of 11 strains of the N531 RpoB type (putative rifampin resistant strains) and of 12 strains of the S531 RpoB type. (putative rifampin susceptible strains). In general, the N531 RpoB types showed higher MIC levels (16-128 microg/ml) than the S531 RpoB types (0-8 microg/ml). To determine the isolation frequencies of N531 RpoB types versus rifampin concentration, we applied screening methods involving different rifampin concentrations (0, 20 and 100 microg/ml) to Korean soils. Higher isolation frequencies of the N531 RpoB types were observed at the higher rifampin concentrations. In addition, during the course of this study we developed an allele specific PCR method to detect rifampin resistant Streptomyces strains. Our results strongly suggested that N531 might be involved in a major mechanism of natural rifampin resistance in strains of the genus Streptomyces.
KeywordMeSH Terms
2. Guo  Y, Zheng  W, Rong  X, Huang  Y,     ( 2008 )

A multilocus phylogeny of the Streptomyces griseus 16S rRNA gene clade: use of multilocus sequence analysis for streptomycete systematics.

International journal of systematic and evolutionary microbiology 58 (Pt 1)
PMID : 18175701  :   DOI  :   10.1099/ijs.0.65224-0    
Abstract >>
Streptomycetes are a complex group of actinomycetes that produce diverse bioactive metabolites of commercial significance. Systematics can provide a useful framework for identifying species that may produce novel metabolites. However, previously proposed approaches to the systematics of Streptomyces have suffered from either poor interlaboratory comparability or insufficient resolution. In particular, the Streptomyces griseus 16S rRNA gene clade is the most challenging and least defined group within the genus Streptomyces in terms of phylogeny. Here we report the results of a multilocus sequence analysis scheme developed to address the phylogeny of this clade. Sequence fragments of six housekeeping genes, atpD, gyrB, recA, rpoB, trpB and 16S rRNA, were obtained for 53 reference strains that represent 45 valid species and subspecies. Analysis of each individual locus confirmed the suitability of loci and the congruence of single-gene trees for concatenation. Concatenated trees of three, four, five and all six genes were constructed, and the stability of the topology and discriminatory power of each tree were analysed. It can be concluded from the results that phylogenetic analysis based on multilocus sequences is more accurate and robust for species delineation within Streptomyces. A multilocus phylogeny of six genes proved to be optimal for elucidating the interspecies relationships within the S. griseus 16S rRNA gene clade. Our multilocus sequence analysis scheme provides a valuable tool that can be applied to other Streptomyces clades for refining the systematic framework of this genus.
KeywordMeSH Terms
Bacterial Typing Techniques
Phylogeny
Sequence Analysis, DNA
3. Pet?í?ková  K, Chro?áková  A, Zelenka  T, Chrudimský  T, Pospíšil  S, Pet?í?ek  M, Krištůfek  V,     ( 2015 )

Evolution of cyclizing 5-aminolevulinate synthases in the biosynthesis of actinomycete secondary metabolites: outcomes for genetic screening techniques.

Frontiers in microbiology 6 (N/A)
PMID : 26300877  :   DOI  :   10.3389/fmicb.2015.00814     PMC  :   PMC4525017    
Abstract >>
A combined approach, comprising PCR screening and genome mining, was used to unravel the diversity and phylogeny of genes encoding 5-aminolevulinic acid synthases (ALASs, hemA gene products) in streptomycetes-related strains. In actinomycetes, these genes were believed to be directly connected with the production of secondary metabolites carrying the C5N unit, 2-amino-3-hydroxycyclopent-2-enone, with biological activities making them attractive for future use in medicine and agriculture. Unlike "classical" primary metabolism ALAS, the C5N unit-forming cyclizing ALAS (cALAS) catalyses intramolecular cyclization of nascent 5-aminolevulinate. Specific amino acid sequence changes can be traced by comparison of "classical" ALASs against cALASs. PCR screening revealed 226 hemA gene-carrying strains from 1,500 tested, with 87% putatively encoding cALAS. Phylogenetic analysis of the hemA homologs revealed strain clustering according to putative type of metabolic product, which could be used to select producers of specific C5N compound classes. Supporting information was acquired through analysis of actinomycete genomic sequence data available in GenBank and further genetic or metabolic characterization of selected strains. Comparison of 16S rRNA taxonomic identification and BOX-PCR profiles provided evidence for numerous horizontal gene transfers of biosynthetic genes or gene clusters within actinomycete populations and even from non-actinomycete organisms. Our results underline the importance of environmental and evolutionary data in the design of efficient techniques for identification of novel producers.
KeywordMeSH Terms
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
5-aminolevulinate synthase
C5N unit
Streptomyces
gene evolution
genetic screening
horizontal gene transfer
secondary metabolites
4.     ( 1997 )

Molecular detection of streptomycin-producing streptomycetes in Brazilian soils.

Applied and environmental microbiology 63 (4)
PMID : 9097426  :   PMC  :   PMC168423    
Abstract >>
Actinomycetes were isolated from soybean rhizosphere soil collected as two field sites in Brazil. All the isolates were identified as Streptomyces species and were screened for streptomycin production and the presence of two genes, strA and strB1, known to be involved in streptomycin biosynthesis in Streptomyces griseus. Antibiotic resistance profiles were determined for 53 isolates from cultivated and uncultivated sites, and approximately half the strains were streptomycin resistance. Clustering by the unweighted pair group method with averages indicated the presence of two major clusters, with the majority of resistant strains from cultivated sites being placed in cluster 1. Only representatives from this cluster contained strA. Streptomycetes containing strA and strB1 were phenotypically diverse, and only half could be assigned to known species. Sequence comparison of 16S rRNA and trpBA (tryptophan synthetase) genes revealed that streptomycin- producing streptomycetes were phylogenetically diverse. It appeared that a population of streptomycetes had colonized the rhizosphere and that a proportion of these were capable of streptomycin production.
KeywordMeSH Terms
Soil Microbiology

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