Establishing the Secondary Metabolite Profile of the Marine Fungus: Tolypocladium geodes sp. MF458 and Subsequent Optimisation of Bioactive Secondary Metabolite Production
暂无分享,去创建一个
J. Imhoff | J. Rahlff | S. Wrigley | A. Labes | A. Prashar | B. Ellinger | P. Gribbon | M. Wolf | Jeanette Reinshagen | J. Silber | B. Kebede
[1] J. Imhoff,et al. Phylogenetic Relationship and Secondary Metabolite Production of Marine Fungi Producing the Cyclodepsipeptides Scopularide A and B , 2016, Marine Biotechnology.
[2] R. Kiss,et al. Marine Invertebrate Metabolites with Anticancer Activities: Solutions to the “Supply Problem” , 2016, Marine drugs.
[3] J. Imhoff. Natural Products from Marine Fungi—Still an Underrepresented Resource , 2016, Marine drugs.
[4] Lin Li,et al. Tetramic Acids and Pyridone Alkaloids from the Endolichenic Fungus Tolypocladium cylindrosporum. , 2015, Journal of natural products.
[5] H. Lou,et al. Lichen endophyte derived pyridoxatin inactivates Candida growth by interfering with ergosterol biosynthesis. , 2015, Biochimica et biophysica acta.
[6] R. Kiss,et al. Can Some Marine-Derived Fungal Metabolites Become Actual Anticancer Agents? , 2015, Marine drugs.
[7] E. Schmidt,et al. Biosynthesis of the tetramic acids Sch210971 and Sch210972. , 2015, Organic letters.
[8] J. Imhoff,et al. Malettinin E, an antibacterial and antifungal tropolone produced by a marine Cladosporium strain , 2014, Front. Mar. Sci..
[9] Tatiana Sanjuan,et al. Phylogenetic-based nomenclatural proposals for Ophiocordycipitaceae (Hypocreales) with new combinations in Tolypocladium , 2014, IMA fungus.
[10] J. Imhoff,et al. A phenotypic screening approach to identify anticancer compounds derived from marine fungi. , 2014, Assay and drug development technologies.
[11] S. Hanessian. Natural products in medicinal chemistry , 2014 .
[12] Jason S. Cumbie,et al. The Genome of Tolypocladium inflatum: Evolution, Organization, and Expression of the Cyclosporin Biosynthetic Gene Cluster , 2013, PLoS genetics.
[13] David L. Hawksworth,et al. A new dawn for the naming of fungi: impacts of decisions made in Melbourne in July 2011 on the future publication and regulation of fungal names , 2011, IMA fungus.
[14] R. Singhal,et al. Cyclosporin A--a review on fermentative production, downstream processing and pharmacological applications. , 2011, Biotechnology advances.
[15] N. MacDonald,et al. Antitumor activity of efrapeptins, alone or in combination with 2-deoxyglucose, in breast cancer in vitro and in vivo , 2011, Cell Stress and Chaperones.
[16] J. Imhoff,et al. Comprehensive Investigation of Marine Actinobacteria Associated with the Sponge Halichondria panicea , 2010, Applied and Environmental Microbiology.
[17] Clay C C Wang,et al. Unlocking Fungal Cryptic Natural Products , 2009, Natural product communications.
[18] S. J. Hickford,et al. Antitumour polyether macrolides: four new halichondrins from the New Zealand deep-water marine sponge Lissodendoryx sp. , 2009, Bioorganic & medicinal chemistry.
[19] Jörn Piel,et al. Metabolites from symbiotic bacteria. , 2009, Natural product reports.
[20] C. Raghukumar,et al. Treatment of Colored Effluents with Lignin-Degrading Enzymes: An Emerging Role of Marine-Derived Fungi , 2008 .
[21] M. Saleem,et al. Marine natural products of fungal origin. , 2007, Natural product reports.
[22] J. Imhoff,et al. Large-Scale Biotechnological Production of the Antileukemic Marine Natural Product Sorbicillactone A , 2007, Marine drugs.
[23] J. Walker,et al. Inhibitors of the catalytic domain of mitochondrial ATP synthase. , 2006, Biochemical Society transactions.
[24] R. Shoemaker. The NCI60 human tumour cell line anticancer drug screen , 2006, Nature Reviews Cancer.
[25] J. Bennett,et al. Fungal secondary metabolism — from biochemistry to genomics , 2005, Nature Reviews Microbiology.
[26] J. Imhoff,et al. The first sorbicillinoid alkaloids, the antileukemic sorbicillactones A and B, from a sponge-derived Penicillium chrysogenum strain , 2005 .
[27] R. F. Angawi,et al. Malettinins B-D: new polyketide metabolites from an unidentified fungal colonist of Hypoxylon Stromata (NRRL 29110). , 2005, Journal of natural products.
[28] R. F. Angawi,et al. Malettinin A: a new antifungal tropolone from an unidentified fungal colonist of Hypoxylon stromata (NRRL 29110) , 2003 .
[29] P. Truffa-bachi,et al. New aspects of cyclosporin a mode of action: from gene silencing to gene up-regulation. , 2003, Mini reviews in medicinal chemistry.
[30] M. Hamburger,et al. Novel tetramic acids and pyridone alkaloids, militarinones B, C, and D, from the insect pathogenic fungus Paecilomyces militaris. , 2003, Journal of natural products.
[31] Axel Zeeck,et al. Big Effects from Small Changes: Possible Ways to Explore Nature's Chemical Diversity , 2002, Chembiochem : a European journal of chemical biology.
[32] P. Proksch,et al. Drugs from the seas – current status and microbiological implications , 2002, Applied Microbiology and Biotechnology.
[33] B. Khambay,et al. Production of efrapeptins by Tolypocladium species and evaluation of their insecticidal and antimicrobial properties , 2000 .
[34] Thomas L. Madden,et al. BLAST 2 Sequences, a new tool for comparing protein and nucleotide sequences. , 1999, FEMS microbiology letters.
[35] P. Cai,et al. 8-methyl-pyridoxatin: A novel N-hydroxy pyridone from fungus OS-F61800 that induces erythropoietin in human cells. , 1999, Journal of natural products.
[36] M. Ishibashi,et al. BIOACTIVE METABOLITES OF SYMBIOTIC MARINE MICROORGANISMS , 1993 .
[37] Lori L. Rodgers,et al. The large-scale isolation of bryostatin 1 from Bugula neritina following current good manufacturing practices. , 1991, Journal of natural products.
[38] K. Shin‐ya,et al. Isolation and structural elucidation of pyridoxatin, a free radical scavenger of microbial origin. , 1991, The Journal of antibiotics.
[39] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[40] D. J. Gerhart,et al. Antifouling agents from marine spongeLissodendoryx isodictyalis carter , 1990, Journal of Chemical Ecology.
[41] I. Kitagawa. [Bioactive marine natural products]. , 1988, Yakugaku zasshi : Journal of the Pharmaceutical Society of Japan.
[42] Horst Kessler,et al. Peptide conformations. Part 30. Assignment of the 1H‐, 13C‐, and 15N‐NMR spectra of cyclosporin A in CDCl3 and C6D6 by a combination of homo‐ and heteronuclear two‐dimensional techniques , 1985 .
[43] ÖJVIND WINGE,et al. Taxonomy of the Yeasts , 1953, Nature.
[44] J. Imhoff,et al. Bioactive metabolites of a marine Calcarisporium sp. , 2014 .
[45] C. Raghukumar,et al. Treatment of colored effluents with lignin-degrading enzymes: an emerging role of marine-derived fungi. , 2008, Critical reviews in microbiology.
[46] J. Spatafora,et al. Phylogenetic classification of Cordyceps and the clavicipitaceous fungi , 2007, Studies in mycology.
[47] Joseph Heitman,et al. Sensing the environment: lessons from fungi , 2007, Nature Reviews Microbiology.
[48] Axel A Brakhage,et al. Regulation of penicillin biosynthesis in filamentous fungi. , 2004, Advances in biochemical engineering/biotechnology.
[49] J. Piel. Metabolites from symbiotic bacteriaThis review is dedicated to Professor Axel Zeeck on the occasion of his 65th birthday. , 2004 .
[50] J. Imhoff,et al. Sponge-associated bacteria: general overview and special aspects of bacteria associated with Halichondria panicea. , 2003, Progress in molecular and subcellular biology.
[51] J. Spatafora,et al. A revision of Verticillium sect. Prostrata. II. Phylogenetic analyses of SSU and LSU nuclear rDNA sequences from anamorphs and teleomorphs of the Clavicipitaceae , 2001 .
[52] D. Faulkner. Marine natural products. , 2000, Natural product reports.
[53] Wright,et al. Three new metabolites from marine-derived fungi of the genera coniothyrium and microsphaeropsis , 1999, Journal of natural products.
[54] Y. Kho,et al. Pyridoxatin, an Inhibitor of Gelatinase A with Cytotoxic Activity , 1996 .
[55] V. Havlíček,et al. Iron uptake system of some members of the genus tolypocladium: crystal structure of the ligand and its iron(III) complex , 1993 .
[56] J. Clardy,et al. Structures of the efrapeptins : potent inhibitors of mitochondrial ATPase from the fungus Tolypocladium niveum , 1991 .
[57] D. C. Aldridge,et al. Fungal metabolites II , 1983 .
[58] W. Gams. Cephalosporium-artige Schimmelpilze (Hyphomycetes) , 1971 .