TRANSPORT AND DEFENSIVE ROLE OF ELATOL AT THE SURFACE OF THE RED SEAWEED LAURENCIA OBTUSA (CERAMIALES, RHODOPHYTA) 1
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R. Coutinho | R. Pereira | S. V. Rodrigues | D. Sudatti | G. A. Amado Filho | B. D. da Gama | L. T. Salgado
[1] R. Pereira,et al. Quantitative GC-ECD Analysis of Halogenated Metabolites: Determination of Surface and Within-Thallus Elatol of Laurencia obtusa , 2006, Journal of Chemical Ecology.
[2] R. Nys,et al. Cost of chemical defence in the red alga Delisea pulchra , 2006 .
[3] V. Paul,et al. Marine chemical ecology. , 2006, Natural product reports.
[4] Charled D.Amsler,et al. Defensive and Sensory Chemical Ecology of Brown Algae , 2005 .
[5] R. Pereira,et al. The diterpenes from Dictyotacean marine brown algae in the Tropical Atlantic American region , 2005 .
[6] A. Jeffs,et al. Bottom-drifting algal/mussel spat associations along a sandy coastal region in northern New Zealand , 2004 .
[7] R. Nys,et al. CHEMICAL DEFENSE IN A MARINE ALGA: HERITABILITY AND THE POTENTIAL FOR SELECTION BY HERBIVORES , 2004 .
[8] M. Hay,et al. Associational resistance and shared doom: effects of epibiosis on herbivory , 1995, Oecologia.
[9] Michael D. Abràmoff,et al. Image processing with ImageJ , 2004 .
[10] R. Pereira,et al. Ecological roles of natural products of the Brazilian red seaweed Laurencia obtusa. , 2003, Brazilian journal of biology = Revista brasleira de biologia.
[11] N. Targett,et al. To grow and defend: lack of tradeoffs for brown algal phlorotannins , 2003 .
[12] R. Pereira,et al. Is the Mussel Test a good Indicator of Antifouling Activity? A Comparison Between Laboratory and Field Assays , 2003, Biofouling.
[13] P. Steinberg,et al. CHEMICAL MEDIATION OF COLONIZATION OF SEAWEED SURFACES1 , 2002 .
[14] M. Schoenwaelder. The occurrence and cellular significance of physodes in brown algae , 2002 .
[15] N. T. Hagen,et al. Alarm responses of the green sea urchin, Strongylocentrotusdroebachiensis, induced by chemically labelled durophagous predators and simulated acts of predation , 2002 .
[16] M. Schoenwaelder. Physode Distribution and the Effect of Thallus Sunburn in Hormosira banksii (Fucales, Phaeophyceae) , 2002 .
[17] R. Coutinho,et al. The Effects of Seaweed Secondary Metabolites on Biofouling , 2002 .
[18] Dan Rittschof,et al. Natural Product Antifoulants and Coatings Development , 2001 .
[19] V. Paul,et al. Chemical Mediation of Macroalgal–Herbivore Interactions: Ecological and Evolutionary Perspectives , 2001 .
[20] G. Cronin. Resource Allocation in Seaweeds and Marine Invertebrates: Chemical Defense Patterns in Relation to Defense Theories , 2001 .
[21] R. Nys,et al. Geographic variation in halogenated furanones from the red alga Delisea pulchra and associated herbivores and epiphytes , 2000 .
[22] U. Sommer,et al. Co-consumption¹ and protective coating¹: two new proposed effects of epiphytes on their macroalgal hosts in mesograzer-epiphyte-host interactions , 2000 .
[23] G. Toth,et al. Trade‐offs between phlorotannin production and annual growth in natural populations of the brown seaweed Ascophyllum nodosum , 1999 .
[24] R. Nys,et al. Localisation and surface quantification of secondary metabolites in the red alga Delisea pulchra , 1999 .
[25] R. Nys,et al. A new method for determining surface concentrations of marine natural products on seaweeds , 1998 .
[26] S. Kjelleberg,et al. Chemical inhibition of epibiota by Australian seaweeds , 1998 .
[27] A. Wright,et al. Laurencia rigida: chemical investigations of its antifouling dichloromethane extract. , 1997, Journal of natural products.
[28] P. Steinberg,et al. Phlorotannins versus other factors affecting epiphyte abundance on the kelp Ecklonia radiata , 1997, Oecologia.
[29] M. Hay,et al. Marine chemical ecology: what's known and what's next? , 1996 .
[30] Anthony S. Clare,et al. Marine natural product antifoulants: Status and potential , 1996 .
[31] T. Leya,et al. The need for standardised broad scale bioassay testing: A case study using the red alga Laurencia rigida. , 1996, Biofouling.
[32] A. Davis,et al. Selection of substrata by juvenile Choromytilus chorus (Mytilidae): are chemical cues important? , 1995 .
[33] Peter D. Steinberg,et al. Broad spectrum effects of secondary metabolites from the red alga delisea pulchra in antifouling assays , 1995 .
[34] Lasiak. Recruitment of the brown mussel Perna perna onto natural substrata: a refutation of the primary/ secondary settlement hypothesis , 1995 .
[35] N. Lindquist,et al. Constraints on Chemically Mediated Coevolution: Multiple Functions for Seaweed Secondary Metabolites , 1995 .
[36] P. Steinberg,et al. In situ exudation of phlorotannins by the sublittoral kelp Ecklonia radiata , 1994 .
[37] W. Fenical,et al. Synergisms in Plant Defenses against Herbivores: Interactions of Chemistry, Calcification, and Plant Quality , 1994 .
[38] P. Willemsen. The screening of sponge extracts for antifouling activity using a bioassay with laboratory-reared cyprid larvae of the barnacle Balanus amphitrite , 1994 .
[39] J. Yates,et al. Effects of Nutrient Availability and Herbivory on Polyphenolics in the Seaweed Fucus Versiculosus , 1993 .
[40] H. Cyr,et al. Magnitude and patterns of herbivory in aquatic and terrestrial ecosystems , 1993, Nature.
[41] K. Muramoto,et al. Fatty acids as antifoulants in a marine sponge , 1992 .
[42] P. Steinberg,et al. Chapter 10 – The Chemical Ecology of Plant–Herbivore Interactions in Marine versus Terrestrial Communities , 1992 .
[43] S. Hawkins,et al. Plant-Animal Interactions in the Marine Benthos , 1991, Journal of the Marine Biological Association of the United Kingdom.
[44] R. Nys,et al. Chemically mediated interactions between the red algaPlocamium hamatum (Rhodophyta) and the octocoralSinularia cruciata (Alcyonacea) , 1991 .
[45] K. Sakata,et al. Galactosyl- and Sulfoquinovosyldiacylglycerols Isolated from the Brown Algae, Undaria pinnatifida and Costaria costata as Repellents of the Blue Mussel, Mytilus edulis , 1990 .
[46] K. Sakata,et al. An Improved Assay Method for Antifouling Substances Using the Blue Mussel, Mytilus edulis , 1989 .
[47] C. Young,et al. Epibiosis of Marine Algae and Benthic Invertebrates: Natural Products Chemistry and Other Mechanisms Inhibiting Settlement and Overgrowth , 1989 .
[48] J. Pechenik,et al. Attachment of Mytilus edulis L.larvae on algal and byssal filaments is enhanced by water agitation. , 1988 .
[49] J. Duffy,et al. Chemical Defense Against Different Marine Herbivores: Are Amphipods Insect Equivalents? , 1987, Ecology.
[50] R. Carpenter. PARTITIONING HERBIVORY AND ITS EFFECTS ON CORAL REEF ALGAL COMMUNITIES , 1986 .
[51] C. D’Antonio. Epiphytes on the rocky intertidal red alga RhodomelaLarix (Turner) C. Agardh: Negative effects on the host and food for herbivores? , 1985 .
[52] J. H. Petersen. Larval settlement behavior in competing species: Mytiluscalifornianus Conrad and M. edulis L. , 1984 .
[53] R. Orth,et al. Epiphyte-seagrass relationships with an emphasis on the role of micrograzing: a review , 1984 .
[54] G. Towers,et al. Chemical ecology of red algal bromophenols. I. Temporal, interpopulational and within-thallus measurements of lanosol levels in Rhodomela larix (Turner) C. Agardh , 1982 .
[55] S. Schroeter,et al. EFFECTS OF THE ENCRUSTING BRYOZOAN, MEMBRANIPORA MEMBRANACEA, ON THE LOSS OF BLADES AND FRONDS BY THE GIANT KELP, MACROCYSTIS PYRIFERA (LAMINARIALES) 1 , 1981 .
[56] W. Fenical,et al. SUBCELLULAR LOCALIZATION OF BROMINATED SECONDARY METABOLITES IN THE RED ALGA LAURENCIA SNYDERAE 1 , 1980 .
[57] B. Bernstein,et al. SELECTIVE PRESSURES AND COEVOLUTION IN A KELP CANOPY COMMUNITY IN SOUTHERN CALIFORNIA , 1979 .
[58] E. Knight-Jones,et al. Anti-fouling role of antibiotics produced by marine algae and bryozoans , 1977, Nature.
[59] J. Sieburth,et al. Sargassum Tannin, an Antibiotic which Retards Fouling , 1965, Nature.