Volatile organic compounds from microalgae
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[1] L. A. Daniel,et al. Microalgae cultivation for municipal and piggery wastewater treatment in Brazil , 2019, Journal of Water Process Engineering.
[2] E. Jacob‐Lopes,et al. Biogeneration of Volatile Organic Compounds in Microalgae-Based Systems , 2019, Handbook of Algal Technologies and Phytochemicals.
[3] K. Naddafi,et al. Technical and economic investigation of chemical scrubber and bio-filtration in removal of H2S and NH3 from wastewater treatment plant. , 2019, Journal of environmental management.
[4] Shri Ramaswamy,et al. Dynamic process model and economic analysis of microalgae cultivation in flat panel photobioreactors , 2019, Algal Research.
[5] Z. Zuo. Why Algae Release Volatile Organic Compounds—The Emission and Roles , 2019, Front. Microbiol..
[6] E. Jacob‐Lopes,et al. Bioactive food compounds from microalgae: an innovative framework on industrial biorefineries , 2019, Current Opinion in Food Science.
[7] E. Jacob‐Lopes,et al. Environmental applications of microalgae/cyanobacteria , 2019, New and Future Developments in Microbial Biotechnology and Bioengineering.
[8] E. Jacob‐Lopes,et al. The role of microalgae-based systems in the dynamics of the odors compounds in the meat processing industry , 2019, DESALINATION AND WATER TREATMENT.
[9] Yanping Zhang,et al. Biological carbon fixation: From natural to synthetic , 2018, Journal of CO2 Utilization.
[10] Silan Chen,et al. Effects of nitrogen nutrients on the volatile organic compound emissions from Microcystis aeruginosa. , 2018, Ecotoxicology and environmental safety.
[11] E. P. Hudson,et al. Systematic overexpression study to find target enzymes enhancing production of terpenes in Synechocystis PCC 6803, using isoprene as a model compound. , 2018, Metabolic engineering.
[12] E. Kerkhoven,et al. Barriers and opportunities in bio-based production of hydrocarbons , 2018, Nature Energy.
[13] Eduardo Jacob-Lopes,et al. Microalgal Biorefineries for Bioenergy Production: Can We Move from Concept to Industrial Reality? , 2018, BioEnergy Research.
[14] A. Voilley,et al. Aroma compounds production by solid state fermentation, importance of in situ gas-phase recovery systems , 2018, Applied Microbiology and Biotechnology.
[15] M. Roje,et al. Phytochemical study of the headspace volatile organic compounds of fresh algae and seagrass from the Adriatic Sea (single point collection) , 2018, PloS one.
[16] G. Schembecker,et al. Techniques for the recovery of volatile aroma compounds from biochemical broth: A review , 2018 .
[17] E. Jacob‐Lopes,et al. Bio-combustion of petroleum coke: The process integration with photobioreactors , 2018 .
[18] G. Pastore,et al. Biogeneration of aroma compounds , 2018 .
[19] Z. Zuo,et al. Volatile organic compound emissions from Microcystis aeruginosa under different phosphorus sources and concentrations , 2018 .
[20] Leila,et al. Flavour generation from microalgae in mixotrophic cultivation , 2018 .
[21] M. Borowitzka. Biology of microalgae , 2018 .
[22] Müge İşleten Hoşoğlu. Aroma characterization of five microalgae species using solid-phase microextraction and gas chromatography-mass spectrometry/olfactometry. , 2018, Food chemistry.
[23] Jingxian Zhao,et al. Effects of phosphorus sources on volatile organic compound emissions from Microcystis flos-aquae and their toxic effects on Chlamydomonas reinhardtii , 2018, Environmental Geochemistry and Health.
[24] M. Ottens,et al. Recent Advances in Techniques for Flavor Recovery in Liquid Food Processing , 2018, Food Engineering Reviews.
[25] A. Picon,et al. Volatile compounds and odour characteristics of seven species of dehydrated edible seaweeds. , 2017, Food research international.
[26] Ki‐Hyun Kim,et al. The role of algae and cyanobacteria in the production and release of odorants in water. , 2017, Environmental pollution.
[27] Mohammed Aïder,et al. Geosmin as a source of the earthy-musty smell in fruits, vegetables and water: Origins, impact on foods and water, and review of the removing techniques. , 2017, Chemosphere.
[28] J. Harper,et al. Volatile Metabolites Emission by In Vivo Microalgae—An Overlooked Opportunity? , 2017, Metabolites.
[29] Dinesh A Nagegowda,et al. Transcriptomic insight into terpenoid and carbazole alkaloid biosynthesis, and functional characterization of two terpene synthases in curry tree (Murraya koenigii) , 2017, Scientific Reports.
[30] F. Jüttner,et al. Malodorous volatile organic sulfur compounds: Sources, sinks and significance in inland waters , 2017, Critical reviews in microbiology.
[31] Xiaohua Zhang,et al. Dimethylsulfoniopropionate biosynthesis in marine bacteria and identification of the key gene in this process , 2017, Nature Microbiology.
[32] Jilin Xu,et al. Change of volatile components in six microalgae with different growth phases. , 2017, Journal of the science of food and agriculture.
[33] M. Farag,et al. Enhanced performance of the microalga Chlorella sorokiniana remotely induced by the plant growth-promoting bacteria Azospirillum brasilense and Bacillus pumilus , 2017, Scientific Reports.
[34] Jingxian Zhao,et al. Volatile organic compounds released from Microcystis flos-aquae under nitrogen sources and their toxic effects on Chlorella vulgaris. , 2017, Ecotoxicology and environmental safety.
[35] Ü. Niinemets,et al. Emissions of carotenoid cleavage products upon heat shock and mechanical wounding from a foliose lichen. , 2017, Environmental and experimental botany.
[36] W. D. de Vos,et al. Harnessing the power of microbial autotrophy , 2016, Nature Reviews Microbiology.
[37] S. Giglio,et al. Biochemistry and genetics of taste- and odor-producing cyanobacteria. , 2016, Harmful algae.
[38] J. Liao,et al. Fuelling the future: microbial engineering for the production of sustainable biofuels , 2016, Nature Reviews Microbiology.
[39] M. Giordano,et al. Sulphur and Algae: Metabolism, Ecology and Evolution , 2016 .
[40] E. Jacob‐Lopes,et al. Biogeneration of volatile organic compounds produced by Phormidium autumnale in heterotrophic bioreactor , 2015, Journal of Applied Phycology.
[41] F. Debaste,et al. Review on the potential technologies for aromas recovery from food industry flue gas , 2015 .
[42] Mohamed Gargouri,et al. Microbial and enzymatic technologies used for the production of natural aroma compounds: Synthesis, recovery modeling, and bioprocesses , 2015 .
[43] A. Mišan,et al. Determination of Volatile Organic Compounds in Selected Strains of Cyanobacteria , 2015 .
[44] Ü. Niinemets,et al. How light, temperature, and measurement and growth [CO2] interactively control isoprene emission in hybrid aspen , 2014, Journal of experimental botany.
[45] Y. Bashan,et al. Microalgal Heterotrophic and Mixotrophic Culturing for Bio-refining: From Metabolic Routes to Techno-economics , 2015 .
[46] M. Chang,et al. Production of Fatty Acid-Derived Valuable Chemicals in Synthetic Microbes , 2014, Front. Bioeng. Biotechnol..
[47] Raúl Muñoz,et al. Comparative assessment of a biofilter, a biotrickling filter and a hollow fiber membrane bioreactor for odor treatment in wastewater treatment plants. , 2014, Water research.
[48] T. Franco,et al. Assessment of different carbohydrates as exogenous carbon source in cultivation of cyanobacteria , 2014, Bioprocess and Biosystems Engineering.
[49] K. Muylaert,et al. Evaluation of the volatile composition and sensory properties of five species of microalgae. , 2013, Journal of agricultural and food chemistry.
[50] Y. Choi,et al. Microbial production of short-chain alkanes , 2013, Nature.
[51] Natalia Dudareva,et al. Biosynthesis, function and metabolic engineering of plant volatile organic compounds. , 2013, The New phytologist.
[52] S. Kimura,et al. Volatile Organic Compounds Derived from 2-Keto-Acid Decarboxylase in Microcystis aeruginosa , 2012, Microbes and environments.
[53] J. Keasling,et al. Microbial engineering for the production of advanced biofuels , 2012, Nature.
[54] James C. Liao,et al. ATP drives direct photosynthetic production of 1-butanol in cyanobacteria , 2012, Proceedings of the National Academy of Sciences.
[55] Manjinder Singh,et al. Renewable biomass production by mixotrophic algae in the presence of various carbon sources and wastewaters , 2011 .
[56] R. Stuetz,et al. Odor Assessment and Management in Wastewater Treatment Plants: A Review , 2011 .
[57] Y. Bashan,et al. Heterotrophic cultures of microalgae: metabolism and potential products. , 2011, Water research.
[58] Y. Ghasemi,et al. Biotransformation of monoterpenes by immobilized microalgae , 2011, Journal of Applied Phycology.
[59] A. Schirmer,et al. Microbial Biosynthesis of Alkanes , 2010, Science.
[60] James C. Liao,et al. Engineering Corynebacterium glutamicum for isobutanol production , 2010, Applied Microbiology and Biotechnology.
[61] R. Berger. Biotechnology of flavours—the next generation , 2009, Biotechnology Letters.
[62] Mohammad Hossein Morowvat,et al. Biotransformation of monoterpenes by Oocystis pusilla , 2009 .
[63] A. Grossman,et al. Ancient recruitment by chromists of green algal genes encoding enzymes for carotenoid biosynthesis. , 2008, Molecular biology and evolution.
[64] Jörn Petersen,et al. Isoprenoid biosynthesis authenticates the classification of the green alga Mesostigma viride as an ancient streptophyte. , 2007, Gene.
[65] P. Moulin,et al. Treatment of gas containing hydrophobic VOCs by a hybrid absorption-pervaporation process : The case of toluene , 2007 .
[66] M. A. Sanromán,et al. Production of Food Aroma Compounds: Microbial and Enzymatic Methodologies , 2006 .
[67] Leland M. Vane,et al. A review of pervaporation for product recovery from biomass fermentation processes , 2005 .
[68] J. Raven,et al. CO2 concentrating mechanisms in algae: mechanisms, environmental modulation, and evolution. , 2005, Annual review of plant biology.
[69] P. Proteau,et al. The methylerythritol phosphate pathway contributes to carotenoid but not phytol biosynthesis in Euglena gracilis. , 2004, Journal of natural products.
[70] Hal Westberg,et al. Identification and quantification of volatile organic compounds from a dairy , 2003 .
[71] Susan B. Watson,et al. Cyanobacterial and eukaryotic algal odour compounds: signals or by-products? A review of their biological activity , 2003 .
[72] G. Pohnert,et al. Synthesis and biological activity of α,β,γ,δ-unsaturated aldehydes from diatoms , 2003 .
[73] R. Prinn,et al. Isoprene production by Prochlorococcus, a marine cyanobacterium, and other phytoplankton , 2003 .
[74] M. Rohmer,et al. CO2 as main carbon source for isoprenoid biosynthesis via the mevalonate-independent methylerythritol 4-phosphate route in the marine diatoms Phaeodactylum tricornutum and Nitzschia ovalis. , 2000, Phytochemistry.
[75] J. Schwender,et al. Distribution of the mevalonate and glyceraldehyde phosphate/pyruvate pathways for isoprenoid biosynthesis in unicellular algae and the cyanobacterium Synechocystis PCC 6714. , 1998, The Biochemical journal.
[76] Jörg Schwender,et al. Biosynthesis of isoprenoids in higher plant chloroplasts proceeds via a mevalonate‐independent pathway , 1997, FEBS letters.
[77] J. Schwender,et al. Biosynthesis of isoprenoids (carotenoids, sterols, prenyl side-chains of chlorophylls and plastoquinone) via a novel pyruvate/glyceraldehyde 3-phosphate non-mevalonate pathway in the green alga Scenedesmus obliquus. , 1996, The Biochemical journal.
[78] J. Chappell. Biochemistry and Molecular Biology of the Isoprenoid Biosynthetic Pathway in Plants , 1995 .
[79] F. Jüttner,et al. The reducing capacities of cyanobacteria for aldehydes and ketones , 1986, Applied Microbiology and Biotechnology.
[80] F. Jiittner. Characterization of Microcystis Strains by Alkyl Sulfides and β-Cyclocitral , 1984 .
[81] D. Mackay,et al. Volatilization Rates of Organic Contaminants from Rivers , 1980 .