Hybrid isoprenoid secondary metabolite production in terrestrial and marine actinomycetes.
暂无分享,去创建一个
[1] R. Holley,et al. Use of natural antimicrobials to increase antibiotic susceptibility of drug resistant bacteria. , 2010, International journal of food microbiology.
[2] J. Imhoff,et al. Comprehensive Investigation of Marine Actinobacteria Associated with the Sponge Halichondria panicea , 2010, Applied and Environmental Microbiology.
[3] Y. Sakaki,et al. Biochemical Characterization of a Novel Indole Prenyltransferase from Streptomyces sp. SN-593 , 2010, Journal of bacteriology.
[4] K. Shin‐ya,et al. Distribution of the 3-hydroxyl-3-methylglutaryl coenzyme A reductase gene and isoprenoid production in marine-derived Actinobacteria. , 2010, FEMS microbiology letters.
[5] K. Shin‐ya,et al. Sponge-derived Streptomyces producing isoprenoids via the mevalonate pathway. , 2010, Journal of natural products.
[6] O. Gascuel,et al. SeaView version 4: A multiplatform graphical user interface for sequence alignment and phylogenetic tree building. , 2010, Molecular biology and evolution.
[7] Haruo Ikeda,et al. Genomic basis for natural product biosynthetic diversity in the actinomycetes. , 2009, Natural product reports.
[8] L. Heide. Prenyl transfer to aromatic substrates: genetics and enzymology. , 2009, Current opinion in chemical biology.
[9] James R. Cole,et al. The Ribosomal Database Project: improved alignments and new tools for rRNA analysis , 2008, Nucleic Acids Res..
[10] B. Blagg,et al. The design, synthesis, and evaluation of coumarin ring derivatives of the novobiocin scaffold that exhibit antiproliferative activity. , 2008, The Journal of organic chemistry.
[11] Alejandra Prieto-Davó,et al. Comparative actinomycete diversity in marine sediments , 2008 .
[12] Christopher T. Walsh,et al. The evolution of gene collectives: How natural selection drives chemical innovation , 2008, Proceedings of the National Academy of Sciences.
[13] William Fenical,et al. Biosynthesis and structures of cyclomarins and cyclomarazines, prenylated cyclic peptides of marine actinobacterial origin. , 2008, Journal of the American Chemical Society.
[14] J. Noel,et al. The ABBA family of aromatic prenyltransferases: broadening natural product diversity , 2008, Cellular and Molecular Life Sciences.
[15] B. Blagg,et al. Development of novobiocin analogues that manifest anti-proliferative activity against several cancer cell lines. , 2008, The Journal of organic chemistry.
[16] J. Bohlmann,et al. Terpenoid biomaterials. , 2008, The Plant journal : for cell and molecular biology.
[17] V. Paul,et al. Marine chemical ecology. , 2008, Natural product reports.
[18] A. Bull,et al. Marine actinobacteria: new opportunities for natural product search and discovery. , 2007, Trends in microbiology.
[19] S. Ōmura,et al. Studies on terpenoids produced by actinomycetes: oxaloterpins A, B, C, D, and E, diterpenes from Streptomyces sp. KO-3988. , 2007, Journal of natural products.
[20] M. Goodfellow,et al. Streptomyces synnematoformans sp. nov., a novel actinomycete isolated from a sand dune soil in Egypt. , 2007, International journal of systematic and evolutionary microbiology.
[21] J. Gershenzon,et al. The function of terpene natural products in the natural world. , 2007, Nature chemical biology.
[22] P. Dorrestein,et al. Molecular Basis for Chloronium-mediated Meroterpene Cyclization , 2007, Journal of Biological Chemistry.
[23] Paul R Jensen,et al. Developing a new resource for drug discovery: marine actinomycete bacteria , 2006, Nature chemical biology.
[24] H. Kwon,et al. Azamerone, a terpenoid phthalazinone from a marine-derived bacterium related to the genus Streptomyces (Actinomycetales). , 2006, Organic letters.
[25] D. Newman,et al. Rethinking 'secondary' metabolism: physiological roles for phenazine antibiotics , 2006, Nature chemical biology.
[26] J. Noel,et al. Structural basis for the promiscuous biosynthetic prenylation of aromatic natural products , 2005, Nature.
[27] Sy Teisan,et al. Glaciapyrroles A, B, and C, pyrrolosesquiterpenes from a Streptomyces sp. isolated from an Alaskan marine sediment. , 2005, Journal of natural products.
[28] K. Shin‐ya,et al. Studies on Terpenoids Produced by Actinomycetes , 2005, The Journal of Antibiotics.
[29] A. Vitali,et al. Prenylated flavonoids: pharmacology and biotechnology. , 2005, Current medicinal chemistry.
[30] T. Dairi. Studies on Biosynthetic Genes and Enzymes of Isoprenoids Produced by Actinomycetes , 2005, The Journal of Antibiotics.
[31] J. H. Langenheim. Higher plant terpenoids: A phytocentric overview of their ecological roles , 1994, Journal of Chemical Ecology.
[32] G. Carter,et al. Diazepinomicin, a new antimicrobial alkaloid from a marine Micromonospora sp. , 2004, Journal of natural products.
[33] A. Bull,et al. Marine actinomycetes as a source of novel secondary metabolites , 2004, Antonie van Leeuwenhoek.
[34] B. Moore,et al. Biosynthesis and structural revision of neomarinone. , 2003, Organic letters.
[35] F. Rainey,et al. Detection of Eubacterial 3-Hydroxy-3-Methylglutaryl Coenzyme A Reductases from Natural Populations of Actinomycetes , 2003, Microbial Ecology.
[36] T. Kuzuyama,et al. Diversity of the biosynthesis of the isoprene units. , 2003, Natural product reports.
[37] J. F. Fernández Puentes,et al. New cytotoxic indolic metabolites from a marine Streptomyces. , 2003, Journal of natural products.
[38] P. Jensen,et al. Neomarinone, and new cytotoxic marinone derivatives, produced by a marine filamentous bacterium (actinomycetales) , 2000 .
[39] William Fenical,et al. Cyclomarins A−C, New Antiinflammatory Cyclic Peptides Produced by a Marine Bacterium (Streptomyces sp.) , 1999 .
[40] G. Sandmann,et al. Functional analysis of genes from Streptomyces griseus involved in the synthesis of isorenieratene, a carotenoid with aromatic end groups, revealed a novel type of carotenoid desaturase. , 1999, Biochimica et biophysica acta.
[41] J. Euzéby. List of Bacterial Names with Standing in Nomenclature: a folder available on the Internet. , 1997, International journal of systematic bacteriology.
[42] J. Chappell. The Biochemistry and Molecular Biology of Isoprenoid Metabolism , 1995, Plant physiology.
[43] J. Thompson,et al. CLUSTAL W: improving the sensitivity of progressive multiple sequence alignment through sequence weighting, position-specific gap penalties and weight matrix choice. , 1994, Nucleic acids research.
[44] D. Rimland,et al. Randomized double-blinded trial of rifampin with either novobiocin or trimethoprim-sulfamethoxazole against methicillin-resistant Staphylococcus aureus colonization: prevention of antimicrobial resistance and effect of host factors on outcome , 1993, Antimicrobial Agents and Chemotherapy.
[45] P. Jensen,et al. Marinone and debromomarinone: Antibiotic sesquiterpenoid naphthoquinones of a new structure class from a marine bacterium , 1992 .
[46] K. Shin‐ya,et al. Isolation and structural elucidation of an antioxidative agent, naphterpin. , 1990, The Journal of antibiotics.
[47] Y. Hayakawa,et al. Lavanducyanin, a new antitumor substance produced by Streptomyces sp. , 1989, The Journal of antibiotics.
[48] S. Amano,et al. Studies on new antibiotics SF2415. I. Taxonomy, fermentation, isolation, physico-chemical properties and biological activities. , 1987, The Journal of antibiotics.
[49] G. Ourisson,et al. Prokaryotic hopanoids and other polyterpenoid sterol surrogates. , 1987, Annual review of microbiology.
[50] H. Naganawa,et al. Novel antibiotics napyradiomycins. Production, isolation, physico-chemical properties and biological activity. , 1986, The Journal of antibiotics.
[51] M. Collins,et al. Distribution of menaquinones in actinomycetes and corynebacteria. , 1977, Journal of general microbiology.
[52] I. Leopold,et al. Novobiocin, a new antibiotic; ocular penetration and tolerance. , 1957, A.M.A. archives of ophthalmology.
[53] Shane Sj. Novobiocin, a New Antibiotic. , 1956 .
[54] H. B. Woodruff,et al. Discovery and antimicrobial properties of cathomycin, a new antibiotic produced by Streptomyces spheroides n. sp. , 1955, Antibiotics annual.