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Search for "gene cluster" in Full Text gives 60 result(s) in Beilstein Journal of Organic Chemistry.

Streptopyridines, volatile pyridine alkaloids produced by Streptomyces sp. FORM5

  • Ulrike Groenhagen,
  • Michael Maczka,
  • Jeroen S. Dickschat and
  • Stefan Schulz

Beilstein J. Org. Chem. 2014, 10, 1421–1432, doi:10.3762/bjoc.10.146

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  • polyketide synthase gene cluster has not been identified yet. The streptazones are relatively small compounds suggesting that they may be volatile enough to find them in the headspace above bacterial cultures, although the presence of hydrogen bond donor and acceptor sites hints to good solubility in the
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Published 24 Jun 2014

Cuevaenes C–E: Three new triene carboxylic derivatives from Streptomyces sp. LZ35ΔgdmAI

  • Jing-Jing Deng,
  • Chun-Hua Lu,
  • Yao-Yao Li,
  • Shan-Ren Li and
  • Yue-Mao Shen

Beilstein J. Org. Chem. 2014, 10, 858–862, doi:10.3762/bjoc.10.82

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  • triene structural moiety is rarely found in natural products. Streptomyces sp. LZ35 was isolated from the intertidal soil collected at Jimei, Xiamen, China [3]. An orphan type I polyketide synthase gene cluster that contains a putative chorismatase/3-hydroxybenzoate synthase gene was identified by genome
  • as compound 1 [8]. Recently, we have reported the identification and characterization of the biosynthetic gene cluster of cuevaenes from Streptomyces sp. LZ35. Cuevaenes are 3-HBA-containing type I polyketides. An aromatic starter unit (3-HBA converted from chorismate) and six extender units are
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Published 15 Apr 2014

Synthesis of complex intermediates for the study of a dehydratase from borrelidin biosynthesis

  • Frank Hahn,
  • Nadine Kandziora,
  • Steffen Friedrich and
  • Peter F. Leadlay

Beilstein J. Org. Chem. 2014, 10, 634–640, doi:10.3762/bjoc.10.55

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  • biosynthesis, we became interested in the formation of the (12Z,14E)-diene [7]. Z-configured double bonds are much rarer in polyketides than their E-configured counterparts, and their biosynthesis has not been thoroughly investigated yet [7][8][9]. Gene cluster analysis suggested that the double bond at
  • precursor should lead to an E-configured BorDH3 product [10]. However, in the case of borrelidin this is in contradiction to the structure of the natural product in which a Z-configured double bond is present at position 12. In the borrelidin gene cluster, there is no obvious gene coding for an isomerase
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Published 11 Mar 2014

Intermediates in monensin biosynthesis: A late step in biosynthesis of the polyether ionophore monensin is crucial for the integrity of cation binding

  • Wolfgang Hüttel,
  • Jonathan B. Spencer and
  • Peter F. Leadlay

Beilstein J. Org. Chem. 2014, 10, 361–368, doi:10.3762/bjoc.10.34

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  • a transferase (MonKSX) transfers the chain to a discrete acyl carrier protein (MonACPX) [20], both of these proteins being encoded within the monensin gene cluster [16]. The flavin-dependent epoxidase MonCI then catalyses three stereospecific epoxidations to give the tri-epoxide 3, which then
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Published 10 Feb 2014

The regulation and biosynthesis of antimycins

  • Ryan F. Seipke and
  • Matthew I. Hutchings

Beilstein J. Org. Chem. 2013, 9, 2556–2563, doi:10.3762/bjoc.9.290

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  • 10.3762/bjoc.9.290 Abstract Antimycins (>40 members) were discovered nearly 65 years ago but the discovery of the gene cluster encoding antimycin biosynthesis in 2011 has facilitated rapid progress in understanding the unusual biosynthetic pathway. Antimycin A is widely used as a piscicide in the catfish
  • over-produced in cancer cells that are resistant to apoptosis-inducing chemotherapy agents, so antimycins have great potential as anticancer drugs used in combination with existing chemotherapeutics. Here we review what is known about antimycins, the regulation of the ant gene cluster and the unusual
  • species is likely to grow rapidly with the advent of genome mining approaches, which start by identifying promising specialised metabolite gene clusters in whole genome sequences and then inducing their expression through chemical or genetic manipulation of the gene cluster in the native or a heterologous
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Published 19 Nov 2013

The chemistry of isoindole natural products

  • Klaus Speck and
  • Thomas Magauer

Beilstein J. Org. Chem. 2013, 9, 2048–2078, doi:10.3762/bjoc.9.243

Graphical Abstract
  • -dideoxyribopyranose (218) is found in 217. The structure of the aglycone 214 is related to tetracenomycins, a family of tetracyclic aromatic polyketides, which are produced by several Streptomyces species [159]. Biosynthetic investigations revealed a striking similarity of the gene cluster responsible for the
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Published 10 Oct 2013

Activation of cryptic metabolite production through gene disruption: Dimethyl furan-2,4-dicarboxylate produced by Streptomyces sahachiroi

  • Dinesh Simkhada,
  • Huitu Zhang,
  • Shogo Mori,
  • Howard Williams and
  • Coran M. H. Watanabe

Beilstein J. Org. Chem. 2013, 9, 1768–1773, doi:10.3762/bjoc.9.205

Graphical Abstract
  • kb) [6][7]. Direct manipulation, “induced” biosynthetic activation, of a sequenced cluster has also met with some success. The Aspergillus nidulans genome was mined for cryptic orphan gene clusters from which a single, unexpressed PKS-NRPS hybrid was identified. The expression of the gene cluster was
  • precursors of the orphan pathway are fed to the organism and used to screen extracts of the fermentation broth, to identify metabolites containing the labeled precursors [9][10]. Here, we have carried out a functional knockout of aziA2 within the azinomycin gene cluster of Streptomyces sahachiroi [11][12
  • implicated a pyruvate aldolase and methyltransferase containing gene cluster as well as potential polyketide gene clusters containing methyltransferase genes, which will be evaluated in due course through genetic knockout experiments of the ΔaziA2 mutant strain. Disruption of the aziA2 gene gave
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Published 29 Aug 2013

Isotopically labeled sulfur compounds and synthetic selenium and tellurium analogues to study sulfur metabolism in marine bacteria

  • Nelson L. Brock,
  • Christian A. Citron,
  • Claudia Zell,
  • Martine Berger,
  • Irene Wagner-Döbler,
  • Jörn Petersen,
  • Thorsten Brinkhoff,
  • Meinhard Simon and
  • Jeroen S. Dickschat

Beilstein J. Org. Chem. 2013, 9, 942–950, doi:10.3762/bjoc.9.108

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  • pathways, as a dmd-gene cluster for the demethylation pathway is located on a 262 kb plasmid and a gene for the lyase DddP is encoded on its chromosome. Isotopically labeled [2H6]DMSP was efficiently incorporated into methanethiol-derived sulfur volatiles like dimethyl disulfide (1), dimethyl trisulfide (2
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Published 15 May 2013

Mutational analysis of a phenazine biosynthetic gene cluster in Streptomyces anulatus 9663

  • Orwah Saleh,
  • Katrin Flinspach,
  • Lucia Westrich,
  • Andreas Kulik,
  • Bertolt Gust,
  • Hans-Peter Fiedler and
  • Lutz Heide

Beilstein J. Org. Chem. 2012, 8, 501–513, doi:10.3762/bjoc.8.57

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  • , 72076 Tübingen, Germany 10.3762/bjoc.8.57 Abstract The biosynthetic gene cluster for endophenazines, i.e., prenylated phenazines from Streptomyces anulatus 9663, was heterologously expressed in several engineered host strains derived from Streptomyces coelicolor M145. The highest production levels were
  • group of endophenazine A forming an amide bond to the α-amino group of L-Gln. Gene inactivation experiments in the gene cluster proved that ppzM codes for a phenazine N-methyltransferase. The gene ppzV apparently represents a new type of TetR-family regulator, specifically controlling the prenylation in
  • the first investigation of the regulatory genes of phenazine biosynthesis in Streptomyces. Keywords: phenazine; gene cluster; gene inactivation; Introduction Phenazine natural products have important biological activities comprising antibacterial, antifungal, antitumor, antimalarial, antioxidant and
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Published 04 Apr 2012

Natural product biosyntheses in cyanobacteria: A treasure trove of unique enzymes

  • Jan-Christoph Kehr,
  • Douglas Gatte Picchi and
  • Elke Dittmann

Beilstein J. Org. Chem. 2011, 7, 1622–1635, doi:10.3762/bjoc.7.191

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  • inhibit proteases. A signature of the group is the conserved ureido linkage connecting the side-chain amino acid to D-lysine. The corresponding NRPS gene cluster was first analyzed in the strain Anabaena sp. 90 and revealed a new mechanism underlying production of diverse variants by the same strain: Two
  • neurotoxins produced by cyanobacteria. A gene cluster for the alkaloid was first described for the strain Oscillatoria sp. PCC 6506 [36]. Analysis of the gene cluster and feeding studies suggested a biosynthetic scheme starting from L-proline and involving three polyketide synthases, with (S)-1-pyrolline-5
  • cassette that is expected to be involved in β-branching of polyketides [52]. NRPS and PKS pathways in terrestrial cyanobacteria Nostopeptolide The nostopeptolide gene cluster was the first NRPS/PKS type gene cluster described for a terrestrial cyanobacterial strain, namely Nostoc sp. GSV 224 [53
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Published 05 Dec 2011
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