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Energy, 101, 1266, 10.1016\u002Fj.renene.2016.10.015\nAfify, 2018, Scenedesmus obliquus: antioxidant and antiviral activity of proteins hydrolyzed by three enzymes, J. Genet. Eng. Biotechnol., 16, 399, 10.1016\u002Fj.jgeb.2018.01.002\nAmorim, 2020, Extraction of proteins from the microalga Scenedesmus obliquus BR003 followed by lipid extraction of the wet deproteinized biomass using hexane and ethyl acetate, Bioresour. Technol., 307, 123190, 10.1016\u002Fj.biortech.2020.123190\nArumugham, 2021, Supercritical carbon dioxide extraction of plant phytochemicals for biological and environmental applications–A review, Chemosphere, 129525, 10.1016\u002Fj.chemosphere.2020.129525\nAwaluddin, 2016, Subcritical water technology for enhanced extraction of biochemical compounds from Chlorella vulgaris, BioMed Res. Int., 10.1155\u002F2016\u002F5816974\n2012\nAyre, 2013\nBalasubramanian, 2011, Oil extraction from Scenedesmus obliquus using a continuous microwave system - design, optimization, and quality characterization, Bioresour. Technol., 102, 3396, 10.1016\u002Fj.biortech.2010.09.119\nBatista, 2014, Scenedesmus obliquus as feedstock for biohydrogen production by Enterobacter aerogenes and Clostridium butyricum, Fuel, 117, 537, 10.1016\u002Fj.fuel.2013.09.077\nBian, 2017, Fatty acid decarboxylation reaction kinetics and pathway of co-conversion with amino acid on supported iron oxide catalysts, RSC Adv., 7, 47279, 10.1039\u002FC7RA08507A\nChoi, 1987, Supercritical fluid extraction and characterization of lipids from algae Scenedesmus obliquus, Food Biotechnol., 1, 263, 10.1080\u002F08905438709549669\n1986, Protection of the Environment, and in particular of the soil, when sewage sludge is used in agriculture, Off. J. Eur. Communities, 4, 6\nda Silva, 2020, Food safety, hypolipidemic and hypoglycemic activities, and in vivo protein quality of microalga Scenedesmus obliquus in Wistar rats, J. Funct. Foods., 65, 103711, 10.1016\u002Fj.jff.2019.103711\nDo, 2009, Catalytic deoxygenation of methyl-octanoate and methyl-stearate on Pt\u002FAl2O3, Catal. Lett., 130, 9, 10.1007\u002Fs10562-009-9900-7\nEspín, 2000, Characterization of the total free radical scavenger capacity of vegetable oils and oil fractions using 2,2-diphenyl-1-picrylhydrazyl radical, J. Agric. Food Chem., 48, 648, 10.1021\u002Fjf9908188\n2002\nFerreira, 2021, Biostimulant and biopesticide potential of microalgae growing in piggery wastewater, Environ. Adv., 100062, 10.1016\u002Fj.envadv.2021.100062\nFerreira, 2019, Scenedesmus obliquus microalga-based biorefinery – from brewery effluent to bioactive compounds, biofuels and biofertilizers – aiming at a circular bioeconomy, Biofuels, Bioprod. Biorefining, 13, 1169, 10.1002\u002Fbbb.2032\nGangadhar, 2016, Microalgae-based unsaponifiable matter as source of natural antioxidants and metal chelators to enhance the value of wet Tetraselmis chuii biomass, Open Chem, 14, 299, 10.1515\u002Fchem-2016-0029\nGani, 2017, Extraction of hydrocarbons from freshwater green microalgae (Botryococcus sp.) biomass after phycoremediation of domestic wastewater, Int. J. Phytoremediation, 19, 679, 10.1080\u002F15226514.2017.1284743\nGaspar, 2001, Disruption of glandular trichomes with compressed CO2: alternative matrix pre-treatment for CO2 extraction of essential oils, J. Supercrit. Fluids, 21, 11, 10.1016\u002FS0896-8446(01)00073-0\nGilbert-López, 2017, Green compressed fluid technologies for downstream processing of Scenedesmus obliquus in a biorefinery approach, Algal Res, 24, 111, 10.1016\u002Fj.algal.2017.03.011\nGouveia, 2016, Microalgae biomass production using wastewater: treatment and costs: scale-up considerations, Algal Res, 16, 167, 10.1016\u002Fj.algal.2016.03.010\nGuedes, 2013, Supercritical fluid extraction of carotenoids and chlorophylls a, b and c, from a wild strain of Scenedesmus obliquus for use in food processing, J. Food Eng., 116, 478, 10.1016\u002Fj.jfoodeng.2012.12.015\nHe, 2017, Enhanced the energy outcomes from microalgal biomass by the novel biopretreatment, Energy Convers. Manag., 135, 291, 10.1016\u002Fj.enconman.2016.12.049\n2001\n2008\n2008\n2017\n2013\nKähkönen, 1999, Antioxidant activity of plant extracts containing phenolic compounds, J. Agric. Food Chem., 47, 3954, 10.1021\u002Fjf990146l\nKalaichelvan, 2012, Experimental, theoretical calculations of the vibrational spectra and conformational analysis of 2,4-di-tert-butylphenol, Spectrochim. Acta Part A Mol. Biomol. Spectrosc., 85, 198, 10.1016\u002Fj.saa.2011.09.061\nKelly, 1999, Squalene and its potential clinical uses, Alternative Med. Rev., 4, 29\nLage, 2018, Quantification and characterisation of fatty acid methyl esters in microalgae: comparison of pretreatment and purification methods, Bioresour. Technol., 257, 121, 10.1016\u002Fj.biortech.2018.01.153\nLin, 2014, Recent progress in heavy metal extraction by supercritical CO2 fluids, Ind. Eng. Chem. Res., 53, 1866, 10.1021\u002Fie4035708\nLópez-Rosales, 2019, Fatty Acids, hydrocarbons and terpenes of nannochloropsis and nannochloris isolates with potential for biofuel production, Energies, 12, 130, 10.3390\u002Fen12010130\nLozano-Grande, 2018, Plant sources, extraction methods, and uses of squalene, Int. J. Agron. Agron., 1829160\nMandal, 2009, Microalga Scenedesmus obliquus as a potential source for biodiesel production, Appl. Microbiol. Biotechnol., 84, 281, 10.1007\u002Fs00253-009-1935-6\nManilal, 2011, Biological activity of the red alga Laurencia brandenii, Acta Bot. Croat., 70, 81, 10.2478\u002Fv10184-010-0001-x\nMarkham, 1989, Flavones, flavonols and their glycosides, 197, 10.1016\u002FB978-0-12-461011-8.50012-3\nMarrez, 2019, Antimicrobial and anticancer activities of Scenedesmus obliquus metabolites, Heliyon, 5, 10.1016\u002Fj.heliyon.2019.e01404\nMeyer, 2012, Effect of CO2 pre-treatment on scCO2 extraction of natural material, Chem. Eng. Process. Process Intensif., 56, 37, 10.1016\u002Fj.cep.2012.02.003\nMichalak, 2016, The potential usefulness of a new generation of agro-products based on raw materials of biological origin, Acta Sci. Pol. Hortorum Cultus, 15, 97\nMichalak, 2016, Evaluation of supercritical extracts of algae as biostimulants of plant growth in field trials, Front. 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Eng., 1, 37\n1996, Algal ecology: freshwater benthic ecosystems\nSunar, 2019, Potential of biofuel from extraction of microalgae biomass via domestic wastewater phycoremediation, FMC, 1, 1\nŚwiniarska, 2015, Toxicity of the Spirulina sp. extract-containing plant biostimulant, Przem. Chem., 1, 167\nTomaz, 2012, Analysis and characterization of methyl esters of fatty acids of some Gracilaria species, Biochem. Systemat. Ecol., 44, 303, 10.1016\u002Fj.bse.2012.02.006\nTyagi, 2017, Phytochemical screening and GC-MS analysis of ethanol ACN extract, J. Pharmacogn. Phytochem., 6, 195\n1996\n1998\n2007\n2007\nVarsha, 2015, 2,4-Di-tert-butyl phenol as the antifungal, antioxidant bioactive purified from a newly isolated Lactococcus sp, Int. J. 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J. Biochem. Cell Biol., 10.1016\u002Fj.biocel.2008.06.010\nAltunbas, 2011, Encapsulation of curcumin in self-assembling peptide hydrogels as injectable drug delivery vehicles, Biomaterials, 32, 5906, 10.1016\u002Fj.biomaterials.2011.04.069\nAnal, 2005, Chitosan-alginate multilayer beads for controlled release of ampicillin, Int. J. Pharm., 290, 45, 10.1016\u002Fj.ijpharm.2004.11.015\nBasar, 2020, Encapsulation of β-carotene by emulsion electrospraying using deep eutectic solvents, Molecules, 25, 981, 10.3390\u002Fmolecules25040981\nCarroll, 2011, Phase IIa clinical trial of curcumin for the prevention of colorectal neoplasia, Cancer Prev. Res., 4, 354, 10.1158\u002F1940-6207.CAPR-10-0098\nChan, 2011, Effects of starch filler on the physical properties of lyophilized calcium-alginate beads and the viability of encapsulated cells, Carbohydr. 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