Effects of additional Mg2+ on the growth, lipid production, and fatty acid composition of Monoraphidium sp. FXY-10 under different culture conditions
暂无分享,去创建一个
[1] Ioannis K. Kookos,et al. Design and techno-economic evaluation of microbial oil production as a renewable resource for biodiesel and oleochemical production , 2014 .
[2] Dehua Liu,et al. Microbial oil production from various carbon sources and its use for biodiesel preparation , 2013 .
[3] G. Aggelis,et al. Biochemical activities in Chlorella sp. and Nannochloropsis salina during lipid and sugar synthesis in a lab-scale open pond simulating reactor. , 2013, Journal of biotechnology.
[4] Peng Zhao,et al. Isolation of a novel strain of Monoraphidium sp. and characterization of its potential application as biodiesel feedstock. , 2012, Bioresource technology.
[5] J. Teixeira,et al. Mixotrophic cultivation of Chlorella vulgaris using industrial dairy waste as organic carbon source. , 2012, Bioresource technology.
[6] T. Tan,et al. The effect of different trophic modes on lipid accumulation of Scenedesmus quadricauda. , 2012, Bioresource technology.
[7] C. Vílchez,et al. Cu-mediated biomass productivity enhancement and lutein enrichment of the novel microalga Coccomyxa onubensis , 2012 .
[8] A. C. D. da Costa,et al. The Growth of Monoraphidium sp. and Scenedesmus sp. Cells in the Presence of Thorium , 2012, TheScientificWorldJournal.
[9] S. Ruangsomboon. Effect of light, nutrient, cultivation time and salinity on lipid production of newly isolated strain of the green microalga, Botryococcus braunii KMITL 2. , 2012, Bioresource technology.
[10] G. Ying,et al. Biosorption of zinc and copper from aqueous solutions by two freshwater green microalgae Chlorella pyrenoidosa and Scenedesmus obliquus , 2012, Environmental Science and Pollution Research.
[11] Y. Ju,et al. Oil Production from Yarrowia lipolytica Po1g Using Rice Bran Hydrolysate , 2012, Journal of biomedicine & biotechnology.
[12] Jo-Shu Chang,et al. Effects of cultivation conditions and media composition on cell growth and lipid productivity of indigenous microalga Chlorella vulgaris ESP-31. , 2012, Bioresource technology.
[13] J. Sineiro,et al. Effect of Mg, Si, and Sr on growth and antioxidant activity of the marine microalga Tetraselmis suecica , 2012, Journal of Applied Phycology.
[14] Manjinder Singh,et al. Renewable biomass production by mixotrophic algae in the presence of various carbon sources and wastewaters , 2011 .
[15] Seraphim Papanikolaou,et al. Lipids of oleaginous yeasts. Part I: Biochemistry of single cell oil production. , 2011 .
[16] Seraphim Papanikolaou,et al. Lipids of oleaginous yeasts. Part II: Technology and potential applications , 2011 .
[17] A. Ahmad,et al. Microalgae as a sustainable energy source for biodiesel production: A review , 2011 .
[18] Yue Jiang,et al. Differential lipid and fatty acid profiles of photoautotrophic and heterotrophic Chlorella zofingiensis: assessment of algal oils for biodiesel production. , 2011, Bioresource technology.
[19] Jasvinder Singh,et al. Commercialization potential of microalgae for biofuels production , 2010 .
[20] Li-Hua Cheng,et al. Enhanced lipid production of Chlorella vulgaris by adjustment of cultivation conditions. , 2010, Bioresource technology.
[21] C. Soccol,et al. Potential carbon dioxide fixation by industrially important microalgae. , 2010, Bioresource technology.
[22] Philip Owende,et al. Biofuels from microalgae—A review of technologies for production, processing, and extractions of biofuels and co-products , 2010 .
[23] J. Kocot,et al. BIOCHEMISTRY OF MAGNESIUM , 2010 .
[24] Teresa M. Mata,et al. Microalgae for biodiesel production and other applications: A review , 2010 .
[25] Feng Chen,et al. Rapid screening method for lipid production in alga based on Nile red fluorescence , 2009 .
[26] G. Knothe. Improving biodiesel fuel properties by modifying fatty ester composition , 2009 .
[27] S. Mandal,et al. Microalga Scenedesmus obliquus as a potential source for biodiesel production , 2009, Applied Microbiology and Biotechnology.
[28] Yanna Liang,et al. Biomass and lipid productivities of Chlorella vulgaris under autotrophic, heterotrophic and mixotrophic growth conditions , 2009, Biotechnology Letters.
[29] M. Ramos,et al. Influence of fatty acid composition of raw materials on biodiesel properties. , 2009, Bioresource technology.
[30] Bai-cheng Zhou,et al. Effect of iron on growth and lipid accumulation in Chlorella vulgaris. , 2008, Bioresource technology.
[31] Z. Cohen,et al. Microbial and algal oils: Do they have a future for biodiesel or as commodity oils? , 2008 .
[32] Q. Hu,et al. Microalgal triacylglycerols as feedstocks for biofuel production: perspectives and advances. , 2008, The Plant journal : for cell and molecular biology.
[33] V. Peršić,et al. The Effect of Ni2+, Co2+, Zn2+, Cd2+ and Hg2+ on the Growth Rate of Marine Diatom Phaeodactylum tricornutum Bohlin: Microplate Growth Inhibition Test , 2007, Bulletin of environmental contamination and toxicology.
[34] Y. Chisti. Biodiesel from microalgae. , 2007, Biotechnology advances.
[35] Yusuf Chisti,et al. Research review paper Biodiesel from microalgae , 2007 .
[36] Æ. J.Horvatic´,et al. of Marine Diatom Phaeodactylum tricornutum Bohlin: Microplate Growth Inhibition Test , 2007 .
[37] J. Harwood,et al. Lipids and lipid metabolism in eukaryotic algae. , 2006, Progress in lipid research.
[38] J. Kirby,et al. Toxicity, biotransformation, and mode of action of arsenic in two freshwater microalgae (Chlorella sp. and Monoraphidium arcuatum) , 2005, Environmental toxicology and chemistry.
[39] J. A. López-Elías,et al. Indoor and outdoor mass production of the diatom Chaetoceros muelleri in a mexican commercial hatchery , 2005 .
[40] Erik De Schutter,et al. A look back , 2004, Neuroinformatics.
[41] S. Papanikolaou,et al. Repression of reserve lipid turnover in Cunninghamella echinulata and Mortierella isabellina cultivated in multiple‐limited media , 2004, Journal of applied microbiology.
[42] R. Lim,et al. Toxicity of metal mixtures to a tropical freshwater alga (Chlorella sp.): The effect of interactions between copper, cadmium, and zinc on metal cell binding and uptake , 2002, Environmental toxicology and chemistry.
[43] Illman,et al. Increase in Chlorella strains calorific values when grown in low nitrogen medium. , 2000, Enzyme and microbial technology.
[44] J. Benemann,et al. Look Back at the U.S. Department of Energy's Aquatic Species Program: Biodiesel from Algae; Close-Out Report , 1998 .
[45] Feng Chen,et al. High cell density culture of microalgae in heterotrophic growth , 1996 .
[46] M. S. Soares,et al. Effects of cadmium on Euglena gracilis membrane lipids. , 1996, Brazilian journal of medical and biological research = Revista brasileira de pesquisas medicas e biologicas.
[47] E. Becker. Microalgae: Biotechnology and Microbiology , 1994 .
[48] P. Roessler,et al. Changes in the activities of various lipid and carbohydrate biosynthetic enzymes in the diatom Cyclotella cryptica in response to silicon deficiency. , 1988, Archives of biochemistry and biophysics.
[49] D. Feinberg,et al. Fuels from microalgae: Technology status, potential, and research requirements , 1986 .
[50] J. Gaur,et al. PHYCOLOGY AND HEAVY‐METAL POLLUTION , 1981 .
[51] W. J. Dyer,et al. A rapid method of total lipid extraction and purification. , 1959, Canadian journal of biochemistry and physiology.