Microalgae bioengineering: From CO2 fixation to biofuel production
暂无分享,去创建一个
Michael K. Danquah | Xianhai Zeng | Yinghua Lu | Yinghua Lu | Xianhai Zeng | M. Danquah | Xiao Dong Chen | X. Chen
[1] Michael K. Danquah,et al. Dewatering of microalgal culture for biodiesel production: exploring polymer flocculation and tangential flow filtration , 2009 .
[2] D. Culver,et al. Photosynthesis and photorespiration in algae. , 1977, Plant physiology.
[3] Joel L Cuello,et al. Carbon Dioxide Mitigation using Thermophilic Cyanobacteria , 2007 .
[4] Klaus S. Lackner,et al. A Guide to CO2 Sequestration , 2003, Science.
[5] Yeguang Li,et al. Production of astaxanthin from Haematococcus in open pond by two-stage growth one-step process , 2009 .
[6] J. Doucha,et al. Utilization of flue gas for cultivation of microalgae Chlorella sp.) in an outdoor open thin-layer photobioreactor , 2005, Journal of Applied Phycology.
[7] W. Merrick. Mechanism and regulation of eukaryotic protein synthesis. , 1992, Microbiological reviews.
[8] H. Oh,et al. Comparison of several methods for effective lipid extraction from microalgae. , 2010, Bioresource technology.
[9] G. Murthy,et al. Life cycle analysis of algae biodiesel , 2010 .
[10] Donald R. Ort,et al. Oxygenic Photosynthesis: The Light Reactions , 1996, Advances in Photosynthesis and Respiration.
[11] Ana Cristina Oliveira,et al. Microalgae as a raw material for biofuels production , 2009, Journal of Industrial Microbiology & Biotechnology.
[12] Zheng-yun Wu,et al. Optimization for high‐density cultivation of heterotrophic Chlorella based on a hybrid neural network model , 2007, Letters in applied microbiology.
[13] Carmen García,et al. Development in lipid analysis: Some new extraction techniques and in situ transesterification , 2000, Lipids.
[14] Beatriz P. Nobre,et al. Supercritical carbon dioxide extraction of compounds with pharmaceutical importance from microalgae , 2003 .
[15] N. Sushchik,et al. Particulate fatty acids in two small Siberian reservoirs dominated by different groups of phytoplankton , 2003 .
[16] Laurens Mets,et al. Improvement of photosynthetic CO2 fixation at high light intensity through reduction of chlorophyll antenna size , 2002 .
[17] R. Mendes,et al. Effect of n-dodecane on Crypthecodinium cohnii fermentations and DHA production , 2006, Journal of Industrial Microbiology and Biotechnology.
[18] J. Doucha,et al. Simultaneous flue gas bioremediation and reduction of microalgal biomass production costs , 2009, Applied Microbiology and Biotechnology.
[19] M. Spalding,et al. Microalgal carbon-dioxide-concentrating mechanisms: Chlamydomonas inorganic carbon transporters. , 2007, Journal of experimental botany.
[20] J. Tjaden,et al. Altered plastidic ATP/ADP-transporter activity influences potato ( Solanum tuberosum L.) tuber morphology, yield and composition of tuber starch , 1998 .
[21] J. Scurlock,et al. The development and current status of perennial rhizomatous grasses as energy crops in the US and Europe , 2003 .
[22] Y. Chisti. Biodiesel from microalgae. , 2007, Biotechnology advances.
[23] Francesca Venturi,et al. Supercritical fluid extraction of oil from microalga Spirulina (arthrospira) platensis , 2006 .
[24] Christer Jansson,et al. Calcifying cyanobacteria--the potential of biomineralization for carbon capture and storage. , 2010, Current opinion in biotechnology.
[25] Shahab Sokhansanj,et al. ECONOMICS OF PRODUCING FUEL PELLETS FROM BIOMASS , 2006 .
[26] Olaf Kruse,et al. An economic and technical evaluation of microalgal biofuels , 2010, Nature Biotechnology.
[27] Benoit Guieysse,et al. Algal-bacterial processes for the treatment of hazardous contaminants: a review. , 2006, Water research.
[28] Razif Harun,et al. Microalgal biomass as a fermentation feedstock for bioethanol production , 2009 .
[29] B. De Baets,et al. Genome analysis of the smallest free-living eukaryote Ostreococcus tauri unveils many unique features. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[30] R. Birkenbihl,et al. A regulator of nutritional copper signaling in Chlamydomonas is an SBP domain protein that recognizes the GTAC core of copper response element. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[31] A. Kumar,et al. Enhancement of seed oil content by expression of glycerol-3-phosphate acyltransferase genes. , 2000, Biochemical Society transactions.
[32] S. Long,et al. What is the maximum efficiency with which photosynthesis can convert solar energy into biomass? , 2008, Current opinion in biotechnology.
[33] I. Karube,et al. Isolation and characterization of a green alga Neochloris sp. for CO2 fixation , 1998 .
[34] A. H. Scragg,et al. Growth of microalgae with increased calorific values in a tubular bioreactor , 2002 .
[35] John R. Benemann,et al. Dunaliella salina (Chlorophyta) with small chlorophyll antenna sizes exhibit higher photosynthetic productivities and photon use efficiencies than normally pigmented cells , 1998, Journal of Applied Phycology.
[36] P. Geigenberger,et al. Increasing seed oil content in oil-seed rape (Brassica napus L.) by over-expression of a yeast glycerol-3-phosphate dehydrogenase under the control of a seed-specific promoter. , 2007, Plant biotechnology journal.
[37] J. Dewulf,et al. Enhanced CO(2) fixation and biofuel production via microalgae: recent developments and future directions. , 2010, Trends in biotechnology.
[38] Arnaud Hélias,et al. Life-cycle assessment of biodiesel production from microalgae. , 2009, Environmental science & technology.
[39] Dehua Liu,et al. Prospective and impacts of whole cell mediated alcoholysis of renewable oils for biodiesel production , 2009 .
[40] Stephen P. Long,et al. Meeting US biofuel goals with less land: the potential of Miscanthus , 2008 .
[41] M. Quilliam,et al. Solid-phase extraction and liquid chromatography--mass spectrometry for the determination of free fatty acids in shellfish. , 2007, Journal of chromatography. A.
[42] C. Posten,et al. Second Generation Biofuels: High-Efficiency Microalgae for Biodiesel Production , 2008, BioEnergy Research.
[43] M. Hoppert,et al. Mutants of Saccharomyces cerevisiae deficient in acyl‐CoA synthetases secrete fatty acids due to interrupted fatty acid recycling , 2008, The FEBS journal.
[44] K. Reitan,et al. EFFECT OF NUTRIENT LIMITATION ON FATTY ACID AND LIPID CONTENT OF MARINE MICROALGAE 1 , 1994 .
[45] Paul Upham,et al. Substitutable biodiesel feedstocks for the UK: a review of sustainability issues with reference to the UK RTFO , 2009 .
[46] I. Tetlow,et al. Recent developments in understanding the regulation of starch metabolism in higher plants. , 2004, Journal of experimental botany.
[47] C. Lan,et al. CO2 bio-mitigation using microalgae , 2008, Applied Microbiology and Biotechnology.
[48] J. Shaw,et al. Characterization of an Autonomously Activated Plant ADP-Glucose Pyrophosphorylase1[OA] , 2008, Plant Physiology.
[49] S. Merchant,et al. Two copper-responsive elements associated with the Chlamydomonas Cyc6 gene function as targets for transcriptional activators. , 1995, The Plant cell.
[50] Kazuhisa Ono,et al. Extracellular secretion of free fatty acids by disruption of a fatty acyl-CoA synthetase gene in Saccharomyces cerevisiae. , 2003, Journal of bioscience and bioengineering.
[51] J. Ohlrogge,et al. Increased fatty acid production in potato by engineering of acetyl-CoA carboxylase , 2004, Planta.
[52] Feng Chen,et al. High‐Yield Production of Lutein by the Green Microalga Chlorella protothecoidesin Heterotrophic Fed‐Batch Culture , 2002, Biotechnology progress.
[53] Aditya M. Kunjapur,et al. Photobioreactor Design for Commercial Biofuel Production from Microalgae , 2010 .
[54] J. Doucha,et al. Productivity, CO2/O2 exchange and hydraulics in outdoor open high density microalgal (Chlorella sp.) photobioreactors operated in a Middle and Southern European climate , 2006, Journal of Applied Phycology.
[55] Nicole Poulsen,et al. A new molecular tool for transgenic diatoms , 2005 .
[56] A. McDowall,et al. Engineering photosynthetic light capture: impacts on improved solar energy to biomass conversion. , 2007, Plant biotechnology journal.
[57] Razif Harun,et al. Bioprocess engineering of microalgae to produce a variety of consumer products , 2010 .
[58] C. Giersch,et al. Starchless Mutants of Chlamydomonas reinhardtii Lack the Small Subunit of a Heterotetrameric ADP-Glucose Pyrophosphorylase , 2001, Journal of bacteriology.
[59] M. Ikenouchi,et al. The biological CO2 fixation and utilization project by rite (2) — Screening and breeding of microalgae with high capability in fixing CO2 — , 1997 .
[60] D. Stark,et al. Regulation of the Amount of Starch in Plant Tissues by ADP Glucose Pyrophosphorylase , 1992, Science.
[61] F. García-Camacho,et al. Biomass nutrient profiles of the microalga Nannochloropsis. , 2001, Journal of agricultural and food chemistry.
[62] B. Palsson,et al. Elemental balancing of biomass and medium composition enhances growth capacity in high-density Chlorella vulgaris cultures. , 1998, Biotechnology and bioengineering.
[63] J. Costa,et al. Biofixation of carbon dioxide by Spirulina sp. and Scenedesmus obliquus cultivated in a three-stage serial tubular photobioreactor. , 2007, Journal of biotechnology.
[64] Hiroshi Tamiya,et al. Mass Culture of Algae , 1957 .
[65] Q. Hu,et al. Effect of extremely high-CO2 stress on energy distribution between photosystem I and photosystem II in a ‘high-CO2’ tolerant green alga, Chlorococcum littorale and the intolerant green alga Stichococcus bacillaris , 1998 .
[66] John Sheehan,et al. Life Cycle Inventory of Biodiesel and Petroleum Diesel for Use in an Urban Bus , 1998 .
[67] L. Fan,et al. Carbonation−Calcination Cycle Using High Reactivity Calcium Oxide for Carbon Dioxide Separation from Flue Gas , 2002 .
[68] M. Badger,et al. The Role of Carbonic Anhydrase in Photosynthesis , 1994 .
[69] Michael K. Danquah,et al. Marine microalgae flocculation and focused beam reflectance measurement , 2010 .
[70] Hu Qiang,et al. Combined effects of light intensity, light-path and culture density on output rate of Spirulina platensis (Cyanobacteria) , 1998 .
[71] Richard T. Sayre,et al. Microalgae: The Potential for Carbon Capture , 2010 .
[72] C. Howe,et al. Biodiesel from algae: challenges and prospects. , 2010, Current opinion in biotechnology.
[73] Christopher J. Howe,et al. Influence of nitrogen-limitation regime on the production by Chlorella vulgaris of lipids for biodiesel feedstocks , 2010 .
[74] Jin-Suk Lee,et al. Review of advances in biological CO2 mitigation technology , 2003 .
[75] Dahai Tang,et al. CO2 biofixation and fatty acid composition of Scenedesmus obliquus and Chlorella pyrenoidosa in response to different CO2 levels. , 2011, Bioresource technology.
[76] Vijayanand S. Moholkar,et al. Mechanistic Assessment of Microalgal Lipid Extraction , 2010 .
[77] Andrew Hoadley,et al. Dewatering of microalgal cultures : a major bottleneck to algae-based fuels , 2010 .
[78] Robert E. Jinkerson,et al. Genetic Engineering of Algae for Enhanced Biofuel Production , 2010, Eukaryotic Cell.
[79] Q. Hu,et al. Microalgal triacylglycerols as feedstocks for biofuel production: perspectives and advances. , 2008, The Plant journal : for cell and molecular biology.
[80] Stuart A. Scott,et al. Improving the sustainability of the production of biodiesel from oilseed rape in the UK , 2008 .
[81] Wei Du,et al. Improved catalytic performance of GA cross-linking treated Rhizopus oryzae IFO 4697 whole cell for biodiesel production. , 2010 .
[82] S. Maheswaran,et al. Changes in phosphorylation of myc oncogene and RB antioncogene protein products during growth arrest of the murine lymphoma WEHI 231 cell line. , 1991, Oncogene.
[83] Clemens Posten,et al. Closed photo-bioreactors as tools for biofuel production. , 2009, Current opinion in biotechnology.
[84] A. Melis,et al. Solar energy conversion efficiencies in photosynthesis: Minimizing the chlorophyll antennae to maximize efficiency , 2009 .
[85] Xianming Shi,et al. Biochemical System Analysis of Lutein Production by Heterotrophic Chlorella pyrenoidosa in a Fermentor , 2009 .
[86] J. M. Fernández-Sevilla,et al. Biotechnological production of lutein and its applications , 2010, Applied Microbiology and Biotechnology.
[87] L. Laurens,et al. Microalgae as biodiesel & biomass feedstocks: Review & analysis of the biochemistry, energetics & economics , 2010 .
[88] J. W. Peters,et al. Engineering algae for biohydrogen and biofuel production. , 2009, Current opinion in biotechnology.
[89] Alison M. Smith. Prospects for increasing starch and sucrose yields for bioethanol production. , 2008, The Plant journal : for cell and molecular biology.
[90] D. Thorneycroft,et al. α-Amylase Is Not Required for Breakdown of Transitory Starch in Arabidopsis Leaves* , 2005, Journal of Biological Chemistry.
[91] Dehua Liu,et al. Organosolv pretreatment of lignocellulosic biomass for enzymatic hydrolysis , 2009, Applied Microbiology and Biotechnology.
[92] Réjean Tremblay,et al. Effect of ultrasonication and grinding on the determination of lipid class content of microalgae harvested on filters , 2003, Lipids.
[93] Andrew R. Bassett,et al. Highly specific gene silencing by artificial microRNAs in the unicellular alga Chlamydomonas reinhardtii. , 2009, The Plant journal : for cell and molecular biology.
[94] H. Herzog,et al. Carbon Capture and Storage from Fossil Fuel Use 1 , 2022 .
[95] J. Myers,et al. NUTRITION AND GROWTH OF SEVERAL BLUE‐GREEN ALGAE , 1955 .
[96] K. Abel,et al. CLASSIFICATION OF MICROORGANISMS BY ANALYSIS OF CHEMICAL COMPOSITION I , 1963, Journal of bacteriology.
[97] Graziella Chini Zittelli,et al. Productivity and photosynthetic efficiency of outdoor cultures of Tetraselmis suecica in annular columns , 2006 .
[98] K. Gruys,et al. Expression of Umbelopsis ramanniana DGAT2A in Seed Increases Oil in Soybean1[OA] , 2008, Plant Physiology.
[99] A. Melis. Excitation Energy Transfer: Functional and Dynamic Aspects of Lhc (cab) Proteins , 1996 .
[100] S. Amin. Review on biofuel oil and gas production processes from microalgae , 2009 .
[101] J. Ohlrogge,et al. Targeting of the Arabidopsis Homomeric Acetyl-Coenzyme A Carboxylase to Plastids of Rapeseeds , 1997, Plant physiology.
[102] Yuan-Kun Lee,et al. Commercial production of microalgae in the Asia-Pacific rim , 1997, Journal of Applied Phycology.
[103] C. Schwarz,et al. Cysteine modification of a specific repressor protein controls the translational status of nucleus-encoded LHCII mRNAs in Chlamydomonas , 2009, Proceedings of the National Academy of Sciences.
[104] Mutsumi Takagi,et al. Nitrogen depletion for intracellular triglyceride accumulation to enhance liquefaction yield of marine microalgal cells into a fuel oil , 1998 .
[105] P. Covello,et al. Seed-specific over-expression of an Arabidopsis cDNA encoding a diacylglycerol acyltransferase enhances seed oil content and seed weight. , 2001, Plant physiology.
[106] S. Polasky,et al. Environmental, economic, and energetic costs and benefits of biodiesel and ethanol biofuels. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[107] S. Miyachi,et al. Photosynthesis and hydrogen evolution under stress conditions in a CO2-tolerant marine green alga, Chlorococcum littorale , 1996 .
[108] H. Kanō. [Biosynthesis of lipids]. , 1971, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[109] W. Yuan,et al. Heterotrophic Culture of Chlorella protothecoides in Various Nitrogen Sources for Lipid Production , 2010, Applied biochemistry and biotechnology.
[110] L. Rodolfi,et al. Microalgae for oil: Strain selection, induction of lipid synthesis and outdoor mass cultivation in a low‐cost photobioreactor , 2009, Biotechnology and bioengineering.
[111] Kevin J. Shinners,et al. Comparison of wet and dry corn stover harvest and storage , 2007 .
[112] S. Harrison,et al. Selection of Direct Transesterification as the Preferred Method for Assay of Fatty Acid Content of Microalgae , 2010, Lipids.