Identification of okadaic acid binding protein 2 in reconstituted sponge cell clusters from Halichondria okadai and its contribution to the detoxification of okadaic acid.
暂无分享,去创建一个
M. Yotsu-Yamashita | K. Konoki | T. Miyamoto | K. Tachibana | S. Fukuzawa | Kaori Saito | G. Nishitani | Yuko Cho | Hiroki Matsuura | Kayo Okada | Mami Kohama
[1] S. Yokoyama,et al. Crystal Structure of Okadaic Acid Binding Protein 2.1: A Sponge Protein Implicated in Cytotoxin Accumulation , 2015, Chembiochem : a European journal of chemical biology.
[2] M. Yotsu-Yamashita,et al. Expression of recombinant alpha and beta tubulins from the yew Taxus cuspidata and analysis of the microtubule assembly in the presence of taxol , 2014, Bioscience, biotechnology, and biochemistry.
[3] I. Abe,et al. Calyculin biogenesis from a pyrophosphate protoxin produced by a sponge symbiont. , 2014, Nature chemical biology.
[4] Shinnosuke Kaga,et al. In Vitro Acylation of Okadaic Acid in the Presence of Various Bivalves’ Extracts , 2013, Marine drugs.
[5] Jörn Piel,et al. Metagenome Mining Reveals Polytheonamides as Posttranslationally Modified Ribosomal Peptides , 2012, Science.
[6] Jonathan Y. Mane,et al. Modeling the Yew Tree Tubulin and a Comparison of its Interaction with Paclitaxel to Human Tubulin , 2012, Pharmaceutical Research.
[7] K. Miyamoto,et al. Construction of a Metagenomic Library for the Marine Sponge Halichondria okadai , 2012, Bioscience, biotechnology, and biochemistry.
[8] H. Blanch,et al. Multiple Approaches To Enhance the Cultivability of Bacteria Associated with the Marine Sponge Haliclona (gellius) sp , 2011, Applied and Environmental Microbiology.
[9] S. Murray,et al. SPECIES BOUNDARIES IN THE TOXIC DINOFLAGELLATE PROROCENTRUM LIMA (DINOPHYCEAE, PROROCENTRALES), BASED ON MORPHOLOGICAL AND PHYLOGENETIC CHARACTERS 1 , 2011, Journal of phycology.
[10] Naoyuki Sugiyama,et al. Binding of diarrheic shellfish poisoning toxins to okadaic acid binding proteins purified from the sponge Halichondria okadai. , 2010, Bioorganic & medicinal chemistry.
[11] D. Uemura,et al. Dinohydrazides A and B, Novel Hydrazides from a Symbiotic Marine Dinoflagellate , 2010 .
[12] N. Funayama. The stem cell system in demosponges: Insights into the origin of somatic stem cells , 2010, Development, growth & differentiation.
[13] M. Daly,et al. Sodium channel mutation leading to saxitoxin resistance in clams increases risk of PSP , 2010 .
[14] Ryoji Matsushima,et al. Liquid-chromatographic hybrid triple–quadrupole linear-ion-trap MS/MS analysis of fatty-acid esters of dinophysistoxin-1 in bivalves and toxic dinoflagellates in Japan , 2009, Fisheries Science.
[15] Jörn Piel,et al. Metabolites from symbiotic bacteria. , 2009, Natural product reports.
[16] E. Schmidt. Trading molecules and tracking targets in symbiotic interactions. , 2008, Nature chemical biology.
[17] Naoyuki Sugiyama,et al. Isolation and characterization of okadaic acid binding proteins from the marine sponge Halichondria okadai. , 2007, Biochemistry.
[18] Jason Micklefield,et al. Mining and engineering natural-product biosynthetic pathways. , 2007, Nature chemical biology.
[19] C. Sim,et al. Identification of genes suitable for DNA barcoding of morphologically indistinguishable Korean Halichondriidae sponges. , 2007, Molecules and cells.
[20] H. Ushijima,et al. Cold stress defense in the freshwater sponge Lubomirskia baicalensis , 2007, The FEBS journal.
[21] Y. Fukuyo,et al. Identification of Dinophysis fortii as the Causative Organism of Diarrhetic Shellfish Poisoning , 2007 .
[22] 张卫,et al. Purification and in vitro cultivation of archaeocytes(stem cells)of the marine sponge Hymeniacidon perleve(Demospongiae) , 2007 .
[23] G. Bavestrello,et al. Seasonal production of primmorphs from the marine sponge Petrosia ficiformis (Poiret, 1789) and new culturing approaches , 2006 .
[24] P. Proksch,et al. Activated Chemical Defense in Aplysina Sponges Revisited , 2006, Journal of Chemical Ecology.
[25] J. Bennett,et al. Fungal secondary metabolism — from biochemistry to genomics , 2005, Nature Reviews Microbiology.
[26] P. Ruben,et al. Evolutionary diversification of TTX-resistant sodium channels in a predator–prey interaction , 2005, Nature.
[27] Matthias Platzer,et al. Antitumor polyketide biosynthesis by an uncultivated bacterial symbiont of the marine sponge Theonella swinhoei. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[28] P. Langenbruch,et al. Canal systems and choanocyte chambers in freshwater sponges (Porifera, Spongillidae) , 1987, Zoomorphology.
[29] J. Piel. Metabolites from symbiotic bacteriaThis review is dedicated to Professor Axel Zeeck on the occasion of his 65th birthday. , 2004 .
[30] Yoshiyuki Sakaki,et al. Complete genome sequence and comparative analysis of the industrial microorganism Streptomyces avermitilis , 2003, Nature Biotechnology.
[31] J. Tramper,et al. Primmorphs from seven marine sponges: formation and structure. , 2003, Journal of biotechnology.
[32] Xupeng Cao,et al. Optimizing the formation of in vitro sponge primmorphs from the Chinese sponge Stylotella agminata (Ridley). , 2003, Journal of biotechnology.
[33] M. Wagner,et al. Molecular Evidence for a Uniform Microbial Community in Sponges from Different Oceans , 2002, Applied and Environmental Microbiology.
[34] W. Müller,et al. Application of cell culture for the production of bioactive compounds from sponges: synthesis of avarol by primmorphs from Dysidea avara. , 2000, Journal of natural products.
[35] T. Yasumoto,et al. Binding properties of (3)H-PbTx-3 and (3)H-saxitoxin to brain membranes and to skeletal muscle membranes of puffer fish Fugu pardalis and the primary structure of a voltage-gated Na(+) channel alpha-subunit (fMNa1) from skeletal muscle of F. pardalis. , 2000, Biochemical and biophysical research communications.
[36] M. Kawachi,et al. PHYLOGENETIC POSITION OF SYMBIODINIUM (DINOPHYCEAE) ISOLATES FROM TRIDACNIDS (BIVALVIA), CARDIIDS (BIVALVIA), A SPONGE (PORIFERA), A SOFT CORAL (ANTHOZOA), AND A FREE‐LIVING STRAIN , 1999 .
[37] W. Müller. Establishment of a primary cell culture from a sponge: primmorphs from Suberites domuncula , 1999 .
[38] A. Numata,et al. Dankasterone, a new class of cytotoxic steroid produced by a Gymnascella species from a marine sponge , 1999 .
[39] M. Yamasaki,et al. Direct evidence of transformation of dinophysistoxin-1 to 7-O-acyl-dinophysistoxin-1 (dinophysistoxin-3) in the scallop Patinopecten yessoensis. , 1999, Toxicon : official journal of the International Society on Toxinology.
[40] S. Sato,et al. Occurrence of okadaic acid-producing Prorocentrum lima on the Sanriku coast, northern Japan. , 1998, Toxicon : official journal of the International Society on Toxinology.
[41] S. Shumway,et al. Paralytic Shellfish Toxins in Bivalve Molluscs: Occurrence, Transfer Kinetics, and Biotransformation , 1998 .
[42] Philip Hugenholtz,et al. Impact of Culture-Independent Studies on the Emerging Phylogenetic View of Bacterial Diversity , 1998, Journal of bacteriology.
[43] C. Bewley,et al. Lithistid Sponges: Star Performers or Hosts to the Stars. , 1998, Angewandte Chemie.
[44] M. Garson,et al. A sponge/dinoflagellate association in the haplosclerid sponge Haliclona sp.: cellular origin of cytotoxic alkaloids by Percoll density gradient fractionation , 1998, Cell and Tissue Research.
[45] A. Numata,et al. Absolute stereostructures of novel cytotoxic metabolites, gymnastatins A–E, from a Gymnascella species separated from a Halichondria sponge , 1998 .
[46] M. Garson,et al. Cellular origin of chlorinated diketopiperazines in the dictyoceratid sponge Dysidea herbacea (Keller) , 1998, Cell and Tissue Research.
[47] M. Ishibashi,et al. BIOACTIVE METABOLITES OF SYMBIOTIC MARINE MICROORGANISMS , 1993 .
[48] Takuma Sasaki,et al. Alteramide A, a new tetracyclic alkaloid from a bacterium Alteromonas sp. associated with the marine sponge Halichondria okadai , 1992 .
[49] T. Yasumoto,et al. Inhibitory effect of okadaic acid derivatives on protein phosphatases. A study on structure-affinity relationship. , 1992, The Biochemical journal.
[50] K. Wakamatsu,et al. Okadaic acid: an additional non-phorbol-12-tetradecanoate-13-acetate-type tumor promoter. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[51] D. Faulkner,et al. Halichondramide, an antifungal macrolide from the sponge halichondria sp. , 1987 .
[52] 健児 安元,et al. 渦鞭毛藻Prorocentrum limaの毒の主成分PL toxin-IIの単離と同定 , 1982 .
[53] 健児 安元,et al. 下痢性貝毒原因種,渦鞭毛藻Dinophysis fortiiの同定 , 1980 .