Metabolomics and Microbiomics Insights into Differential Surface Fouling of Three Macroalgal Species of Fucus (Fucales, Phaeophyceae) That Co-Exist in the German Baltic Sea
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[1] C. Birkemeyer,et al. Antibacterial, Antifungal and Algicidal Activity of Phlorotannins, as Principal Biologically Active Components of Ten Species of Brown Algae , 2023, Plants.
[2] Y. Shachar-Hill,et al. Do betaine lipids replace phosphatidylcholine as fatty acid editing hubs in microalgae? , 2023, Frontiers in Plant Science.
[3] Carly L. Daniels,et al. Development and Diversity of Epibiont Assemblages on Cultivated Sugar Kelp (Saccharina latissima) in Relation to Farming Schedules and Harvesting Techniques , 2023, Life.
[4] Lei Guo,et al. A Bioactive Substance Derived from Brown Seaweeds: Phlorotannins , 2022, Marine drugs.
[5] C. Gervasi,et al. Effects of crude polysaccharides from marine macroalgae on the adhesion and biofilm formation of Pseudomonas aeruginosa and Staphylococcus aureus , 2022, Algal Research.
[6] W. Vyverman,et al. Selection constrains lottery assembly in the microbiomes of closely related diatom species , 2022, ISME Communications.
[7] M. Alagawany,et al. Betaine and related compounds: Chemistry, metabolism and role in mitigating heat stress in poultry. , 2021, Journal of thermal biology.
[8] T. Ezeorba,et al. Aquatic Phlorotannins and Human Health: Bioavailability, Toxicity, and Future Prospects , 2021, Natural Product Communications.
[9] H. Mizuta,et al. Extracellular silicate uptake and deposition induced by oxidative burst in Saccharina japonica sporophytes (Phaeophyceae) , 2021 .
[10] G. Hoarau,et al. The microbiome of the habitat‐forming brown alga Fucus vesiculosus (Phaeophyceae) has similar cross‐Atlantic structure that reflects past and present drivers1 , 2021, Journal of phycology.
[11] J. Xia,et al. MetaboAnalyst 5.0: narrowing the gap between raw spectra and functional insights , 2021, Nucleic Acids Res..
[12] Jun Li,et al. Trehalose supplementation enhanced the biocontrol efficiency of Sporidiobolus pararoseus Y16 through increased oxidative stress tolerance and altered transcriptome. , 2021, Pest management science.
[13] J. Sohn,et al. Antifungal and Larvicidal Activities of Phlorotannins from Brown Seaweeds , 2021, Marine drugs.
[14] R. Pereira,et al. Rhodoliths: Can Its Importance on a Large Scale Be Promoted by a Microscale and Invisible Phenomenon? , 2021, Frontiers in Marine Science.
[15] Weizhou Chen,et al. Environmental factors shape the epiphytic bacterial communities of Gracilariopsis lemaneiformis , 2021, Scientific Reports.
[16] Xiangzhen Li,et al. microeco: An R package for data mining in microbial community ecology. , 2020, FEMS microbiology ecology.
[17] R. Schulz,et al. Control of fouling in the aquaculture of Fucus vesiculosus and Fucus serratus by regular desiccation , 2020, Journal of Applied Phycology.
[18] Kuo-Ping Chiang,et al. Neglect of Presence of Bacteria Leads to Inaccurate Growth Parameters of the Oligotrich Ciliate Strombidium sp. During Grazing Experiments on Nanoflagellates , 2020, Frontiers in Marine Science.
[19] G. Culioli,et al. Exploring the Role of Macroalgal Surface Metabolites on the Settlement of the Benthic Dinoflagellate Ostreopsis cf. ovata , 2020, Frontiers in Marine Science.
[20] H. Pavia,et al. Growth and biofouling in kelp aquaculture (Saccharina latissima): the effect of location and wave exposure , 2020, Journal of Applied Phycology.
[21] D. Taşdemir,et al. Bioactive Molecular Networking for Mapping the Antimicrobial Constituents of the Baltic Brown Alga Fucus vesiculosus , 2020, Marine drugs.
[22] H. Mohamed,et al. Improving Regulation of Enzymatic and Non-Enzymatic Antioxidants and Stress-Related Gene Stimulation in Cucumber mosaic cucumovirus-Infected Cucumber Plants Treated with Glycine Betaine, Chitosan and Combination , 2020, Molecules.
[23] R. Pereira,et al. Glycoglycerolipids From Sargassum vulgare as Potential Antifouling Agents , 2020, Frontiers in Marine Science.
[24] R. Selvarajan,et al. Distribution, Interaction and Functional Profiles of Epiphytic Bacterial Communities from the Rocky Intertidal Seaweeds, South Africa , 2019, Scientific Reports.
[25] L. Contreras-Porcia,et al. First approach of characterization of bioactive compound in Pyropia orbicularis during the daily tidal cycle , 2019, Latin American Journal of Aquatic Research.
[26] Simon Rogers,et al. Feature-Based Molecular Networking in the GNPS Analysis Environment , 2019, Nature Methods.
[27] C. Hurd,et al. Seaweed nutrient physiology: application of concepts to aquaculture and bioremediation , 2019, Phycologia.
[28] D. Debroas,et al. Temporal covariation of epibacterial community and surface metabolome in the Mediterranean seaweed holobiont Taonia atomaria. , 2019, Environmental microbiology.
[29] Joe Wandy,et al. MolNetEnhancer: Enhanced Molecular Networks by Integrating Metabolome Mining and Annotation Tools , 2019, bioRxiv.
[30] H. Rinne,et al. The status of brown macroalgae Fucus spp. and its relation to environmental variation in the Finnish marine area, northern Baltic Sea , 2019, Ambio.
[31] Nadav Kashtan,et al. Bacterial surface colonization, preferential attachment and fitness under periodic stress , 2019, PLoS Comput. Biol..
[32] Stefano Papazian,et al. Surface chemical defence of the eelgrass Zostera marina against microbial foulers , 2019, Scientific Reports.
[33] S. Gorb,et al. Mapping the Surface Microbiome and Metabolome of Brown Seaweed Fucus vesiculosus by Amplicon Sequencing, Integrated Metabolomics and Imaging Techniques , 2019, Scientific Reports.
[34] S. Sebens,et al. Seasonal Variations in the Metabolome and Bioactivity Profile of Fucus vesiculosus Extracted by an Optimised, Pressurised Liquid Extraction Protocol , 2018, Marine drugs.
[35] Liu Cao,et al. Dereplication of microbial metabolites through database search of mass spectra , 2018, Nature Communications.
[36] Aniruddha Bhargava,et al. IDTAXA: a novel approach for accurate taxonomic classification of microbiome sequences , 2018, Microbiome.
[37] Artur M. S. Silva,et al. Phycochemical Constituents and Biological Activities of Fucus spp. , 2018, Marine drugs.
[38] Mingxun Wang,et al. Propagating annotations of molecular networks using in silico fragmentation , 2018, PLoS Comput. Biol..
[39] R. Selvarajan,et al. Thermophilic bacterial communities inhabiting the microbial mats of “indifferent” and chalybeate (iron‐rich) thermal springs: Diversity and biotechnological analysis , 2017, MicrobiologyOpen.
[40] C. Maggs,et al. Marine macroalgae and their associated microbiomes as a source of antimicrobial chemical diversity , 2017 .
[41] Xiu-li Yin,et al. Sesteralterin and Tricycloalterfurenes A-D: Terpenes with Rarely Occurring Frameworks from the Marine-Alga-Epiphytic Fungus Alternaria alternata k21-1. , 2017, Journal of natural products.
[42] K. Mills,et al. An LC–MS/MS-Based Method for the Quantification of Pyridox(am)ine 5′-Phosphate Oxidase Activity in Dried Blood Spots from Patients with Epilepsy , 2017, Analytical chemistry.
[43] F. Fang,et al. N2O micro-profiles in biofilm from a one-stage autotrophic nitrogen removal system by microelectrode. , 2017, Chemosphere.
[44] H. Schubert,et al. Eelgrass Leaf Surface Microbiomes Are Locally Variable and Highly Correlated with Epibiotic Eukaryotes , 2017, bioRxiv.
[45] G. Pohnert,et al. Seasonal Variations in Surface Metabolite Composition of Fucus vesiculosus and Fucus serratus from the Baltic Sea , 2016, PloS one.
[46] Evan Bolton,et al. ClassyFire: automated chemical classification with a comprehensive, computable taxonomy , 2016, Journal of Cheminformatics.
[47] S. Gorb,et al. Seasonally fluctuating chemical microfouling control in Fucus vesiculosus and Fucus serratus from the Baltic Sea , 2016 .
[48] S. Gorb,et al. Seasonally fluctuating chemical microfouling control in Fucus vesiculosus and Fucus serratus from the Baltic Sea , 2016, Marine Biology.
[49] S. Ermakova,et al. Fucoidans from Brown Alga Fucus evanescens: Structure and Biological Activity , 2016, Front. Mar. Sci..
[50] Kristian Fog Nielsen,et al. Sharing and community curation of mass spectrometry data with Global Natural Products Social Molecular Networking , 2016, Nature Biotechnology.
[51] G. Culioli,et al. Surface metabolites of the brown alga Taonia atomaria have the ability to regulate epibiosis , 2016, Biofouling.
[52] D. Monteiro,et al. Activity of tyrosol against single and mixed‐species oral biofilms , 2016, Journal of applied microbiology.
[53] Paul J. McMurdie,et al. DADA2: High resolution sample inference from Illumina amplicon data , 2016, Nature Methods.
[54] G. Pohnert,et al. A solid phase extraction based non-disruptive sampling technique to investigate the surface chemistry of macroalgae , 2016, Biofouling.
[55] M. Viant,et al. Using community metabolomics as a new approach to discriminate marine microbial particulate organic matter in the western English Channel , 2015 .
[56] S. Jung,et al. Seasonal Dynamics of Marine Microbial Community in the South Sea of Korea , 2015, PloS one.
[57] Zhangran Chen,et al. The first evidence of deinoxanthin from Deinococcus sp. Y35 with strong algicidal effect on the toxic dinoflagellate Alexandrium tamarense. , 2015, Journal of hazardous materials.
[58] U. Karsten,et al. Seasonal fluctuations in chemical defenses against macrofouling in Fucus vesiculosus and Fucus serratus from the Baltic Sea , 2015, Biofouling.
[59] P. Bongaerts,et al. Habitat-specific environmental conditions primarily control the microbiomes of the coral Seriatopora hystrix , 2015, The ISME Journal.
[60] C. Coates,et al. Zoothamnium duplicatum infestation of cultured horseshoe crabs (Limulus polyphemus). , 2015, Journal of invertebrate pathology.
[61] Se-kwon Kim,et al. Isolation and characterization of marine-derived Mucor sp. for the fermentative production of tyrosol , 2014 .
[62] J. Gasol,et al. Community composition of the Planctomycetes associated with different macroalgae. , 2014, FEMS microbiology ecology.
[63] Matthew A. A. Grant,et al. Direct exchange of vitamin B12 is demonstrated by modelling the growth dynamics of algal–bacterial cocultures , 2014, The ISME Journal.
[64] S. Acinas,et al. Spatial and temporal variability among marine Bacteroidetes populations in the NW Mediterranean Sea. , 2014, Systematic and applied microbiology.
[65] P. Bonin,et al. Mannitol metabolism in brown algae involves a new phosphatase family. , 2014, Journal of experimental botany.
[66] M. Saha,et al. Seasonal variation in the antifouling defence of the temperate brown alga Fucus vesiculosus , 2013, Biofouling.
[67] S. Künzel,et al. Compounds associated with algal surfaces mediate epiphytic colonization of the marine macroalga Fucus vesiculosus. , 2013, FEMS microbiology ecology.
[68] T. Thomas,et al. The seaweed holobiont: understanding seaweed-bacteria interactions. , 2013, FEMS microbiology reviews.
[69] Susan Holmes,et al. phyloseq: An R Package for Reproducible Interactive Analysis and Graphics of Microbiome Census Data , 2013, PloS one.
[70] M. Wahl,et al. Temperature-driven shifts in the epibiotic bacterial community composition of the brown macroalga Fucus vesiculosus , 2013, MicrobiologyOpen.
[71] Alissa S. Hanshew,et al. The epiphytic microbiota of the globally widespread macroalga Cladophora glomerata (Chlorophyta, Cladophorales). , 2012, American journal of botany.
[72] V. Souza,et al. Comparative metagenomics of two microbial mats at Cuatro Ciénegas Basin II: community structure and composition in oligotrophic environments. , 2012, Astrobiology.
[73] Natalie I. Tasman,et al. A Cross-platform Toolkit for Mass Spectrometry and Proteomics , 2012, Nature Biotechnology.
[74] Tanja Magoc,et al. FLASH: fast length adjustment of short reads to improve genome assemblies , 2011, Bioinform..
[75] Giuseppe Gallone,et al. Bio::Homology::InterologWalk - A Perl module to build putative protein-protein interaction networks through interolog mapping , 2011, BMC Bioinformatics.
[76] G. Pohnert,et al. Surface-associated fucoxanthin mediates settlement of bacterial epiphytes on the rockweed Fucus vesiculosus , 2011, Biofouling.
[77] D. Renault,et al. Integrative analysis of metabolite and transcript abundance during the short-term response to saline and oxidative stress in the brown alga Ectocarpus siliculosus. , 2011, Plant, cell & environment.
[78] T. Harder,et al. Epibacterial community patterns on marine macroalgae are host-specific but temporally variable. , 2011, Environmental microbiology.
[79] F. Weinberger,et al. Ecology of antifouling resistance in the bladder wrack Fucus vesiculosus: patterns of microfouling and antimicrobial protection , 2010 .
[80] M. Hirai,et al. MassBank: a public repository for sharing mass spectral data for life sciences. , 2010, Journal of mass spectrometry : JMS.
[81] E. Ioannou,et al. Anti-microfouling Activity of Lipidic Metabolites from the Invasive Brown Alga Sargassum muticum (Yendo) Fensholt , 2010, Marine Biotechnology.
[82] T. Harder,et al. Isolated thallus-associated compounds from the macroalga Fucus vesiculosus mediate bacterial surface colonization in the field similar to that on the natural alga , 2009, Biofouling.
[83] M. Hermansson,et al. Seaweed defence against bacteria: a poly-brominated 2-heptanone from the red alga Bonnemaisonia hamifera inhibits bacterial colonisation , 2008 .
[84] T. Thomas,et al. Unlocking the diversity and biotechnological potential of marine surface associated microbial communities. , 2008, Current opinion in microbiology.
[85] K. Bischof,et al. Decreased depth distribution of Fucus vesiculosus (Phaeophyceae) in the Western Baltic: effects of light deficiency and epibionts on growth and photosynthesis , 2008 .
[86] K. Miyashita,et al. Radical scavenging and singlet oxygen quenching activity of marine carotenoid fucoxanthin and its metabolites. , 2007, Journal of agricultural and food chemistry.
[87] Luke E. Ulrich,et al. Ecological Genomics of Marine Roseobacters , 2007, Applied and Environmental Microbiology.
[88] I. Joint,et al. Acyl-homoserine lactones modulate the settlement rate of zoospores of the marine alga Ulva intestinalis via a novel chemokinetic mechanism. , 2006, Plant, cell & environment.
[89] Martin J. Warren,et al. Algae acquire vitamin B12 through a symbiotic relationship with bacteria , 2005, Nature.
[90] L. Kautsky,et al. Invasion of a Habitat-Forming Seaweed: Effects on Associated Biota , 2004, Biological Invasions.
[91] P. Shannon,et al. Cytoscape: a software environment for integrated models of biomolecular interaction networks. , 2003, Genome research.
[92] G. Hoarau,et al. Hybridization of the marine seaweeds, Fucus serratus and Fucus evanescens (Heterokontophyta: Phaeophyceae) in a 100-year-old zone of secondary contact , 2002, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[93] L. Kautsky,et al. Establishment of the Exotic Species Fucus evanescens C. Ag. (Phaeophyceae) in öresund, Southern Sweden , 2002 .
[94] C. Pfister. The Ecology and Physiology of Seaweeds , 1995 .
[95] Fungal diversity, ecology and control management , 2022, Fungal Biology.
[96] Yi Liu,et al. The study of natural biofilm formation and microbial community structure for recirculating aquaculture system , 2021 .
[97] E. Jacob‐Lopes,et al. Pigments from Microalgae Handbook , 2020 .
[98] A. T. Lombardi,et al. Chlorophylls in Microalgae: Occurrence, Distribution, and Biosynthesis , 2020 .
[99] Sun Li,et al. Diversity of algicidal bacteria associated with harmful microalgae and the algicidal mechanisms , 2019 .
[100] B. A. P. Gama,et al. The Antifouling Defence Mechanisms of Marine Macroalgae , 2014 .
[101] B. Singh. Antibacterial activity of glycerol, lactose, maltose, mannitol, raffinose and xylose , 2014 .
[102] R. Venkatesan,et al. Marine and Industrial Biofouling , 2009 .
[103] T. Harder. Marine Epibiosis: Concepts, Ecological Consequences and Host Defence , 2008 .
[104] S. Johansen,et al. Molecular-phylogenetic, structural and biochemical features of a cold-adapted, marine ichthyosporean near the animal-fungal divergence, described from in vitro cultures , 2002 .
[105] T. Kaneda,et al. Studies on the effect of marine products on cholesterol metabolism in rats. XI. Isolation of a new betaine, ulvaline, from a green laver monosrtoma nitidum and its depressing effect on plasma cholesterol levels. , 1975 .
[106] P. Radhika,et al. Sphingolipids from Marine Organisms : A Review , 2022 .