Academic literature on the topic 'Marine cyanobacteria'

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Journal articles on the topic "Marine cyanobacteria"

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Nakayama, Takuro, Mami Nomura, Yoshihito Takano, et al. "Single-cell genomics unveiled a cryptic cyanobacterial lineage with a worldwide distribution hidden by a dinoflagellate host." Proceedings of the National Academy of Sciences 116, no. 32 (2019): 15973–78. http://dx.doi.org/10.1073/pnas.1902538116.

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Cyanobacteria are one of the most important contributors to oceanic primary production and survive in a wide range of marine habitats. Much effort has been made to understand their ecological features, diversity, and evolution, based mainly on data from free-living cyanobacterial species. In addition, symbiosis has emerged as an important lifestyle of oceanic microbes and increasing knowledge of cyanobacteria in symbiotic relationships with unicellular eukaryotes suggests their significance in understanding the global oceanic ecosystem. However, detailed characteristics of these cyanobacteria
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Hurley, Sarah J., Boswell A. Wing, Claire E. Jasper, Nicholas C. Hill, and Jeffrey C. Cameron. "Carbon isotope evidence for the global physiology of Proterozoic cyanobacteria." Science Advances 7, no. 2 (2021): eabc8998. http://dx.doi.org/10.1126/sciadv.abc8998.

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Ancestral cyanobacteria are assumed to be prominent primary producers after the Great Oxidation Event [≈2.4 to 2.0 billion years (Ga) ago], but carbon isotope fractionation by extant marine cyanobacteria (α-cyanobacteria) is inconsistent with isotopic records of carbon fixation by primary producers in the mid-Proterozoic eon (1.8 to 1.0 Ga ago). To resolve this disagreement, we quantified carbon isotope fractionation by a wild-type planktic β-cyanobacterium (Synechococcus sp. PCC 7002), an engineered Proterozoic analog lacking a CO2-concentrating mechanism, and cyanobacterial mats. At mid-Prot
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Engene, Niclas, Sarath P. Gunasekera, William H. Gerwick, and Valerie J. Paul. "Phylogenetic Inferences Reveal a Large Extent of Novel Biodiversity in Chemically Rich Tropical Marine Cyanobacteria." Applied and Environmental Microbiology 79, no. 6 (2013): 1882–88. http://dx.doi.org/10.1128/aem.03793-12.

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ABSTRACTBenthic marine cyanobacteria are known for their prolific biosynthetic capacities to produce structurally diverse secondary metabolites with biomedical application and their ability to form cyanobacterial harmful algal blooms. In an effort to provide taxonomic clarity to better guide future natural product drug discovery investigations and harmful algal bloom monitoring, this study investigated the taxonomy of tropical and subtropical natural product-producing marine cyanobacteria on the basis of their evolutionary relatedness. Our phylogenetic inferences of marine cyanobacterial strai
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Chagas, Fernanda O., Paulo I. Hargreaves, Victoria Gabriela S. Trindade, et al. "Chemical Diversity of Marine Filamentous Benthic Cyanobacteria." Phycology 4, no. 4 (2024): 589–604. http://dx.doi.org/10.3390/phycology4040032.

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Genomic and chemical analysis has revealed that numerous species of filamentous cyanobacteria harbor complex secondary metabolisms tailored to their particular ecological niche. The metabolomic analysis of strains and environmental samples from benthic cyanobacterial mats (BCMs) from coral reefs has the potential to expand the library of marine cyanobacteria-derived natural products. In this study, cyanobacterial strains were obtained from phytobenthos collected from coral reefs in Abrolhos, Brazil and Ishigaki, Japan. Phylogenetic analysis of isolates shows high similarity to previously descr
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Tan, Lik Tong, and Nurul Farhana Salleh. "Marine Cyanobacteria: A Rich Source of Structurally Unique Anti-Infectives for Drug Development." Molecules 29, no. 22 (2024): 5307. http://dx.doi.org/10.3390/molecules29225307.

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Marine cyanobacteria represent a promising yet underexplored source of novel natural products with potent biological activities. Historically, the focus has been on isolating cytotoxic compounds from marine cyanobacteria, but a substantial number of these photosynthetic microorganisms also produce diverse specialized molecules with significant anti-infective properties. Given the global pressing need for new anti-infective lead compounds, this review provides a concise yet comprehensive overview of the current knowledge on anti-infective secondary metabolites derived from marine cyanobacteria.
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El-Seedi, Hesham R., Mohamed F. El-Mallah, Nermeen Yosri, et al. "Review of Marine Cyanobacteria and the Aspects Related to Their Roles: Chemical, Biological Properties, Nitrogen Fixation and Climate Change." Marine Drugs 21, no. 8 (2023): 439. http://dx.doi.org/10.3390/md21080439.

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Marine cyanobacteria are an ancient group of photosynthetic microbes dating back to 3.5 million years ago. They are prolific producers of bioactive secondary metabolites. Over millions of years, natural selection has optimized their metabolites to possess activities impacting various biological targets. This paper discusses the historical and existential records of cyanobacteria, and their role in understanding the evolution of marine cyanobacteria through the ages. Recent advancements have focused on isolating and screening bioactive compounds and their respective medicinal properties, and we
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Ehrenreich, Ian M., John B. Waterbury, and Eric A. Webb. "Distribution and Diversity of Natural Product Genes in Marine and Freshwater Cyanobacterial Cultures and Genomes." Applied and Environmental Microbiology 71, no. 11 (2005): 7401–13. http://dx.doi.org/10.1128/aem.71.11.7401-7413.2005.

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ABSTRACT Natural products are a functionally diverse class of biochemically synthesized compounds, which include antibiotics, toxins, and siderophores. In this paper, we describe both the detection of natural product activities and the sequence identification of gene fragments from two molecular systems that have previously been implicated in natural product production, i.e., nonribosomal peptide synthetases (NRPSs) and modular polyketide synthases (PKSs), in diverse marine and freshwater cyanobacterial cultures. Using degenerate PCR and the sequencing of cloned products, we show that NRPSs an
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Tan, Lik Tong, and Ma Yadanar Phyo. "Marine Cyanobacteria: A Source of Lead Compounds and their Clinically-Relevant Molecular Targets." Molecules 25, no. 9 (2020): 2197. http://dx.doi.org/10.3390/molecules25092197.

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The prokaryotic filamentous marine cyanobacteria are photosynthetic microbes that are found in diverse marine habitats, ranging from epiphytic to endolithic communities. Their successful colonization in nature is largely attributed to genetic diversity as well as the production of ecologically important natural products. These cyanobacterial natural products are also a source of potential drug leads for the development of therapeutic agents used in the treatment of diseases, such as cancer, parasitic infections and inflammation. Major sources of these biomedically important natural compounds a
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Umeda, Kairi, Naoaki Kurisawa, Ghulam Jeelani, Tomoyoshi Nozaki, Kiyotake Suenaga, and Arihiro Iwasaki. "Isolation and structure determination of a new analog of polycavernosides from marine Okeania sp. cyanobacterium." Beilstein Journal of Organic Chemistry 20 (March 21, 2024): 645–52. http://dx.doi.org/10.3762/bjoc.20.57.

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Polycavernoside E (1), a new polycavernoside analog, was isolated from a marine Okeania sp. cyanobacterium. The relative configuration was elucidated primarily by analyzing the two dimensional nuclear magnetism resonance (2D NMR) data. The absolute configuration was clarified by comparing the electronic circular dichroism (ECD) data of 1 with those of known analogs. Polycavernoside E (1) exhibited moderate antitrypanosomal activity against Trypanosoma brucei rhodesiense. Furthermore, the isolation of polycavernoside E (1) from marine cyanobacteria provides additional evidence that marine cyano
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Leão, Tiago, Mingxun Wang, Nathan Moss, et al. "A Multi-Omics Characterization of the Natural Product Potential of Tropical Filamentous Marine Cyanobacteria." Marine Drugs 19, no. 1 (2021): 20. http://dx.doi.org/10.3390/md19010020.

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Microbial natural products are important for the understanding of microbial interactions, chemical defense and communication, and have also served as an inspirational source for numerous pharmaceutical drugs. Tropical marine cyanobacteria have been highlighted as a great source of new natural products, however, few reports have appeared wherein a multi-omics approach has been used to study their natural products potential (i.e., reports are often focused on an individual natural product and its biosynthesis). This study focuses on describing the natural product genetic potential as well as the
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Dissertations / Theses on the topic "Marine cyanobacteria"

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Axmann, Ilka Maria. "The regulatory potential of marine cyanobacteria." Doctoral thesis, Humboldt-Universität zu Berlin, Mathematisch-Naturwissenschaftliche Fakultät I, 2007. http://dx.doi.org/10.18452/15598.

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Das Leben auf der Erde wird maßgeblich durch die Kraft der oxygenen Photosythese bestimmt, die Sonnen- in chemische Energie umwandelt. Cyanobakterien wie Prochloro- und Synechococcus zählen zu den wichtigsten primären Produzenten der Ozeane und werden zunehmend als Modelle für photosynthetische Organismen genutzt. Um die Regulationsmechanismen dieser Picocyanobakterien besser zu verstehen, wurde hier die Information von vier Genomen hochgradig verwandter aber dennoch ökologisch unterschiedlich angepasster mariner Stämme genutzt in einer Kombination aus computer-gestützten und experimentellen
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Terasaki, Satoshi. "Phosphorus sensing/acquisition mechanisms in marine cyanobacteria." Thesis, University of Warwick, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.416188.

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Ribeiro, Maria João Xavier. "Marine cyanobacteria: evaluation of the anticancer potential." Master's thesis, Universidade de Aveiro, 2012. http://hdl.handle.net/10773/10491.

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Mestrado em Biotecnologia Molecular<br>Durante as últimas décadas, as cianobactérias têm ganho importância devido à sua capacidade de sintetizar metabolitos secundários com actividade biológica, úteis no tratamento de inúmeras doenças, tal como o cancro. A caracterização dos metabolitos secundários com aplicações farmacológicas tem sido maioritariamente feita com cianobactérias filamentosas marinhas, do género Lyngbya, Microcoleus e Symploca, recolhidas em áreas tropicais. Contudo, a investigação em cianobactérias marinhas que ocorrem em baixas densidades e em regiões temperadas, como a costa
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Williams, Philip. "Chemical investigations of marine cyanobacteria : the search for new anticancer agents from the sea /." Thesis, University of Hawaii at Manoa, 2003. http://hdl.handle.net/10125/6878.

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Jones, Helen. "Niche adaptation and genomic diversity in marine cyanobacteria." Thesis, University of Warwick, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.418165.

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Thompson, Luke Richard. "Auxiliary metabolic genes in viruses infecting marine cyanobacteria." Thesis, Massachusetts Institute of Technology, 2010. http://hdl.handle.net/1721.1/57562.

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Thesis (Ph. D.)--Massachusetts Institute of Technology, Dept. of Biology, 2010.<br>This electronic version was submitted by the student author. The certified thesis is available in the Institute Archives and Special Collections.<br>Cataloged from student submitted PDF version of thesis.<br>Includes bibliographical references (p. 281-293).<br>Marine viruses shape the diversity and biogeochemical role of their microbial hosts. Cyanophages that infect the cyanobacteria Prochlorococcus and Synechococcus often carry metabolic genes not found in other bacteriophages. The proteins encoded by these `
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Mann, Elizabeth Lowell 1966. "Trace metals and the ecology of marine cyanobacteria." Thesis, Massachusetts Institute of Technology, 2000. http://hdl.handle.net/1721.1/9385.

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Thesis (Ph. D.)--Joint Program in Oceanography (Massachusetts Institute of Technology, Dept. of Biology; and Woods Hole Oceanographic Institution), 2000.<br>Includes bibliographical references.<br>The marine cyanobacteria Synechococcus and Prochlorococcus are important primary producers in oligotrophic oceans. The abundance and cell division rates of these cyanobacteria can be influenced by trace metals such as iron and copper. Iron is an essential trace metal that is present in the high nutrient, low chlorophyll waters of the equatorial Pacific in extremely low concentrations. When these wate
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Dzeha, Thomas Mwambire. "Cyclodepsipeptides from a Kenyan marine cyanobacterium." Thesis, Rhodes University, 2003. http://hdl.handle.net/10962/d1004961.

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An examination of an organic extract of the cyanobacterium Lyngbya majuscula collected from Wasini Island off the southern Kenyan coast led to the isolation of the known cyclodepsipeptide antanapeptin A (7), recently isolated from a Madagascan collection of L. majuscula, and a new bioactive cyclodepsipeptide, homodolastatin 16 (42). Although L. majuscula is a common, pantropical cyanobacterium this study represents the first investigation of the natural product chemistry of a Kenyan population of L. majuscula. The structures of the two cyclodepsipeptides were determined from 2D NMR and mass sp
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Everroad, Richard Craig. "Diversification of marine picocyanobacteria : the ecology and evolution of spectral phenotype and phycoerythrin /." view abstract or download file of text, 2007. http://proquest.umi.com/pqdweb?did=1324371891&sid=1&Fmt=2&clientId=11238&RQT=309&VName=PQD.

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Thesis (Ph. D.)--University of Oregon, 2007.<br>Typescript. Includes vita and abstract. Includes bibliographical references (leaves 117-137). Also available for download via the World Wide Web; free to University of Oregon users.
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Wilson, William Hector. "Characterisation of viruses infecting marine phytoplankton." Thesis, University of Warwick, 1994. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.283512.

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Books on the topic "Marine cyanobacteria"

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Loïc, Charpy, Larkum A. W. D, and Musée océanographique de Monaco, eds. Marine cyanobacteria. Musée océanographique, 1999.

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NATO Advanced Research Workshop on Trichodesmium and Other Marine Diazotrophs (1991 Bamberg, Germany). Marine pelagic cyanobacteria: Trichodesmium and other diazotrophs. Kluwer Academic Publishers, 1992.

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Dzeha, Thomas. Novel pharmaceuticals from Kenyan cyanobacteria. WIOMSA, 2004.

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Carpenter, E. J., D. G. Capone, and J. G. Rueter, eds. Marine Pelagic Cyanobacteria: Trichodesmium and other Diazotrophs. Springer Netherlands, 1992. http://dx.doi.org/10.1007/978-94-015-7977-3.

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Mann, Elizabeth Lowell. Trace metals and the ecology of marine cyanobacteria. Massachusetts Institute of Technology, 2000.

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Andreevich, Shevchenko Vladimir, and Bulatov K. V, eds. Ėkologii͡a morskogo fototrofnogo pikoplanktona. Nauchnyĭ t͡sentr biologicheskikh issledovaniĭ AN SSSR v Pushchine, 1989.

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Saito, Mak A. The biogeochemistry of cobalt in the Sargasso Sea. Massachusetts Institute of Technology, 2001.

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Rocap, Gabrielle. Genetic diversity and ecotypic differentiation in the marine cyanobacteria Prochlorococcus and Synechococcus. Massachusetts Institute of Technology, 2000.

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Janson, Sven. Cell structure and localisation of nitrogenase in some marine and brackish cyanobacteria. Stockholm University, Dept. of Botany, 1995.

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Howard, Katharine Mary. Carbon metabolism and growth of marine unicellular cyanobacteria belonging to the genus "Synechococcus". typescript, 1990.

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Book chapters on the topic "Marine cyanobacteria"

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Partensky, Frédéric, Wolfgang R. Hess, and Laurence Garczarek. "Marine Cyanobacteria." In The Microbiomes of Humans, Animals, Plants, and the Environment. Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-90383-1_3.

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Scanlan, David J. "Marine Picocyanobacteria." In Ecology of Cyanobacteria II. Springer Netherlands, 2012. http://dx.doi.org/10.1007/978-94-007-3855-3_20.

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Paerl, Hans W. "Marine Plankton." In Ecology of Cyanobacteria II. Springer Netherlands, 2012. http://dx.doi.org/10.1007/978-94-007-3855-3_5.

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Sanjeewa, KKA. "Marine Bacteria and Cyanobacteria." In Exploring the Blue Bioeconomy. CRC Press, 2024. http://dx.doi.org/10.1201/9781003477365-3.

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Dwivedi, Sonam, and Iffat Zareen Ahmad. "Cyanobacteria in Ocean." In Current Status of Marine Water Microbiology. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-99-5022-5_4.

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Pramanik, Arnab, Malay Saha, and Barindra Sana. "Antimicrobial Agents from Marine Cyanobacteria and Actinomycetes." In Marine Microbiology. Wiley-VCH Verlag GmbH & Co. KGaA, 2013. http://dx.doi.org/10.1002/9783527665259.ch11.

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Carmichael, Wayne W., Nik A. Mahmood, and Edward G. Hyde. "Natural Toxins from Cyanobacteria (Blue-Green Algae)." In Marine Toxins. American Chemical Society, 1990. http://dx.doi.org/10.1021/bk-1990-0418.ch006.

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Stambler, Noga. "Marine Microalgae/Cyanobacteria–Invertebrate Symbiosis." In All Flesh Is Grass. Springer Netherlands, 2010. http://dx.doi.org/10.1007/978-90-481-9316-5_18.

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Sellner, K. G. "Trophodynamics of Marine Cyanobacteria Blooms." In Marine Pelagic Cyanobacteria: Trichodesmium and other Diazotrophs. Springer Netherlands, 1992. http://dx.doi.org/10.1007/978-94-015-7977-3_6.

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Abdi, Gholamareza, Mukul Barwant, Krishnananda P. Ingle, et al. "Cyanobacteria for Marine-Based Biomolecules." In Biomanufacturing for Sustainable Production of Biomolecules. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-7911-8_10.

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Conference papers on the topic "Marine cyanobacteria"

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Videla, H. A., P. S. Guiamet, S. Gómez de Saravia, and L. Maldonado. "Mechanisms of Microbial Biodeterioration of Limestone in Mayan Buildings." In CORROSION 2001. NACE International, 2001. https://doi.org/10.5006/c2001-01250.

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Abstract Many of the monuments related to Mayan civilization are suffering deterioration by environmental factors (high temperatures and relative humidities), increasing contamination by natural and anthropogenic sources, and by the action of micro and macroorganisms. Archeological sites and historical monuments in the Mayan area were constructed with different limestones which offer different degradation resistance to the various types of contamination. Two different archeological sites in the Yucatan peninsula, Mexico, were chosen for this study: the urban nucleus of Uxmal, located in a rura
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de Siqueira Melo, Rodrigo, Simone Louise D. C. Brasil, Ladimir J. de Carvalho, Aricelso M. Limaverde Filho, and OdaraRamoa B. Melo. "Technological Development of Anti-fouling Paints with EPS as a Natural Biocide." In SSPC 2014 Greencoat. SSPC, 2014. https://doi.org/10.5006/s2014-00032.

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Abstract The exopolysaccharides (EPS) are a class of renewable natural polymers, which present anti-fouling property. Therefore, it may be used as an alternative to conventional additives currently used in anti-corrosive paints. The copper oxide is an additive commonly used due to its anticorrosive and anti-fouling properties. However, this metal oxide presents toxicity to some marine organisms and it can promote environmental problems. The incorporation of EPS in paints based on copper oxide can reduce its contents, since both present anti-fouling characteristics. Another possibility is to in
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KIEŁBASA, SZYMON M., HANSPETER HERZEL, and ILKA M. AXMANN. "REGULATORY ELEMENTS OF MARINE CYANOBACTERIA." In Proceedings of the 7th Annual International Workshop on Bioinformatics and Systems Biology (IBSB 2007). IMPERIAL COLLEGE PRESS, 2007. http://dx.doi.org/10.1142/9781860949920_0001.

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"A model for the marine cyanobacteria, Trichodesmium." In 20th International Congress on Modelling and Simulation (MODSIM2013). Modelling and Simulation Society of Australia and New Zealand (MSSANZ), Inc., 2013. http://dx.doi.org/10.36334/modsim.2013.h3.robson.

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Abdul Quadir, Mohammed, Probir Das, Shoyeb khan, Mahmoud Thaher, and Hareb Al Jabri. "Production of Phycocyanin from Marine Cyanobacteria in Open Raceway Pond." In Qatar University Annual Research Forum & Exhibition. Qatar University Press, 2020. http://dx.doi.org/10.29117/quarfe.2020.0029.

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Phycocyanin is one of the major light harvesting accessory pigment present in microalgae and cyanobacteria. This water-soluble pigment protein exhibits antioxidant, anti-inflammatory, and neuroprotective effects. Application of this pigment has also been used in dietary nutritional supplements in many food, nutraceutical, cosmetic, and biotechnology industries. In the present study phycocyanin was extracted from locally isolated marine cyanobacteria Geitlerinema sp. Geitlerinema sp. showed a higher growth during the summer perioed of 0.75 g/L and 0.54 g/L. Similarly, the maximum Phycocyanin ob
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Lovindeer, Raisha, and Katherine R. M. Mackey. "THE IMPACT OF TERRIGENOUS IRON GRADIENTS ON CHROMATIC ACCLIMATION OF MARINE CYANOBACTERIA." In GSA Annual Meeting in Indianapolis, Indiana, USA - 2018. Geological Society of America, 2018. http://dx.doi.org/10.1130/abs/2018am-317867.

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Patsialou, Stefania, Ioanna Aikaterini Tsakona, Dimitris V. Vayenas, and Athanasia G. Tekerlekopoulou. "Biological Treatment of Second Cheese Whey Using Marine Microalgae/Cyanobacteria-Based Systems." In IOCBE 2024. MDPI, 2025. https://doi.org/10.3390/engproc2024081004.

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Gonçalves, Catarina, Sandra Pereira, Marco Preto, Vítor Vasconcelos, Elisabete R. Silva, and Joana R. Almeida. "Cyanobacteria as a Source of Eco-Friendly Bioactive Ingredients for Antifouling Marine Coatings." In The 7th Iberian Congress on Cyanotoxins/3rd Iberoamerican Congress on Cyanotoxins. MDPI, 2022. http://dx.doi.org/10.3390/blsf2022014015.

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Dalgamouni, Tasneem atef, Shatha Kanji, Maroua Cherif, et al. "Isolation, Cultivation, and Characterization of Novel Local Marine Micro-Algae for Aquaculture Feed Supplement Production." In Qatar University Annual Research Forum & Exhibition. Qatar University Press, 2020. http://dx.doi.org/10.29117/quarfe.2020.0037.

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Aquaculture is considered as a promising alternative to support the food demands of the everincreasing population. Currently, this sector faces several challenges such as using fishmeal, which is unsustainable and expensive. Therefore, it is necessary to identify an alternative feed component that is sustainable, cost-effective and can provide the essential nutrients required by the fish. In this context, microalgae are considered as a viable source of proteins, lipids, polysaccharides and highvalue products (HVPs) such as essential fatty acids, amino acids and vitamins. They play a vital role
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Rashmi, V., D. Prabaharan, and L. Uma. "Greener Technology on Value Added Products From Marine Cyanobacteria – An Insight to the Extracellular Polysaccharides Mediated Bioremediation." In 6th Annual International Conference on Sustainable Energy and Environmental Sciences (SEES 2017). Global Science & Technology Forum (GSTF), 2017. http://dx.doi.org/10.5176/2251-189x_sees17.28.

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Reports on the topic "Marine cyanobacteria"

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Anderson, Donald M., Lorraine C. Backer, Keith Bouma-Gregson, et al. Harmful Algal Research & Response: A National Environmental Science Strategy (HARRNESS), 2024-2034. Woods Hole Oceanographic Institution, 2024. http://dx.doi.org/10.1575/1912/69773.

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Harmful and toxic algal blooms (HABs) are a well-established and severe threat to human health, economies, and marine and freshwater ecosystems on all coasts of the United States and its inland waters. HABs can comprise microalgae, cyanobacteria, and macroalgae (seaweeds). Their impacts, intensity, and geographic range have increased over past decades due to both human-induced and natural changes. In this report, HABs refers to both marine algal and freshwater cyanobacterial events. This Harmful Algal Research and Response: A National Environmental Science Strategy (HARRNESS) 2024-2034 plan bu
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Elardo, Karen. Changes in Proteins Associated with Nitrogen Fixation and Iron Nutrition in the Marine Cyanobacterium Trichodesmium. Portland State University Library, 2000. http://dx.doi.org/10.15760/etd.6778.

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Sperry, Benjamin, Bradley Sartain, Kurt Getsinger, et al. Field demonstration of a peroxide-based algaecide for harmful algal bloom control in Lake Okeechobee. Engineer Research and Development Center (U.S.), 2023. http://dx.doi.org/10.21079/11681/47624.

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Large-scale cyanobacterial harmful algal blooms (cHABs) in Lake Okeechobee, Florida, and connected waterways routinely impair water resources. This study conducted a field demonstration of a peroxide-based algaecide in 2020 in the Pahokee Marina on Lake Okeechobee to evaluate the algaecide’s suitability for near-future operational implementation. Within minutes of treatment, rapid oxidation of cHAB cells occurred in the form of bleaching and cell lysis. On average, levels in the treatment area decreased by 4 hours after treatment (HAT) and remained low out to 24 HAT: chlorophyll decreased 87%,
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Butler, Afrachanna, Catherine Thomas, Alyssa Calomeni, Andrew McQueen, and William Slack. Microseira wollei (M. wollei) blooms in freshwater ecosystems in Lake St. Clair (Michigan, USA)–impacts and possible management approaches. Engineer Research and Development Center (U.S.), 2023. http://dx.doi.org/10.21079/11681/47648.

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The proliferation and shoreline accumulation of the filamentous biphasic cyanobacterium, Microseira wollei (M. wollei) (previously classified as Lyngbya wollei), have become an increasing problem in the Great Lakes, both for aesthetic reasons and its potential to harbor harmful bacteria and pathogens (Vijayavel et al. 2013). Occurrences have been reported and studies have also been conducted in the southeastern US where M. wollei has become a nuisance in recent years and is known to produce toxins (Hudon et al. 2014). Reports of M. wollei proliferations in the eastern US have been identified i
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