Orienting biodiesel production towards sustainability and circularity by tailoring the feedstocks and processes
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[1] B. Deepanraj,et al. Biodiesel quality assessment of microalgae cultivated mixotrophically on sugarcane bagasse , 2022, Sustainable Energy Technologies and Assessments.
[2] A. R. Reddy,et al. Genome sequencing and analysis uncover the regulatory elements involved in the development and oil biosynthesis of Pongamia pinnata (L.) – A potential biodiesel feedstock , 2022, Frontiers in Plant Science.
[3] S. Venkata Mohan,et al. Dual-stage biorefinery to convert spentwash hydrolysate into oleochemicals using Trichosporon cutaneum and Yarrowia lipolytica. , 2022, Bioresource technology.
[4] K. Kuča,et al. Exosome/Liposome-like Nanoparticles: New Carriers for CRISPR Genome Editing in Plants , 2021, International journal of molecular sciences.
[5] S. Kamzolova,et al. Physiological, Biochemical and Energetic Characteristics of Torulaspora globosa, a Potential Producer of Biofuel , 2021, Energies.
[6] S. Venkata Mohan,et al. Microalgal Cell Biofactory—Therapeutic, Nutraceutical and Functional Food Applications , 2021, Plants.
[7] M. Kornaros,et al. Coupling azo dye degradation and biodiesel production by manganese-dependent peroxidase producing oleaginous yeasts isolated from wood-feeding termite gut symbionts , 2021, Biotechnology for Biofuels.
[8] E. Gnansounou,et al. Modelling and process optimization for biodiesel production from Nannochloropsis salina using artificial neural network. , 2021, Bioresource technology.
[9] Bisheswar Karmakar,et al. Factorial optimization of biodiesel synthesis from castor-karanja oil blend with methanol-isopropanol mixture through acid/base doped Delonix regia heterogeneous catalysis , 2021 .
[10] W. Xu,et al. Catalytic self-activation of Ca-doped coconut shell for in-situ synthesis of hierarchical porous carbon supported CaO transesterification catalyst , 2021 .
[11] S. Zailani,et al. Effects of supply chain practices, integration and closed-loop supply chain activities on cost-containment of biodiesel , 2020, Review of Managerial Science.
[12] Fatma Meddeb-Mouelhi,et al. Genome Editing by CRISPR-Cas: A Game Change in the Genetic Manipulation of Chlamydomonas , 2020, Life.
[13] A. D. Moreno,et al. Process Strategies for the Transition of 1G to Advanced Bioethanol Production , 2020 .
[14] Yinghe He,et al. Esterification and transesterification over SrO–ZnO/Al2O3 as a novel bifunctional catalyst for biodiesel production , 2020, Renewable Energy.
[15] Chi‐Hwa Wang,et al. Co-transesterification of waste cooking oil, algal oil and dimethyl carbonate over sustainable nanoparticle catalysts , 2020, Chemical Engineering Journal.
[16] R. Friend,et al. Metal halide perovskites for light-emitting diodes , 2020, Nature Materials.
[17] Mostafa R. Abukhadra,et al. Sonication induced transesterification of castor oil into biodiesel in the presence of MgO/CaO nanorods as a novel basic catalyst: Characterization and optimization , 2020 .
[18] E. Jin,et al. Enhancing lipid productivity by modulating lipid catabolism using the CRISPR-Cas9 system in Chlamydomonas , 2020, Journal of Applied Phycology.
[19] Hwai Chyuan Ong,et al. State of the Art of Catalysts for Biodiesel Production , 2020, Frontiers in Energy Research.
[20] A. Ghasemi,et al. Production of second-generation biodiesel using low-quality date fruits , 2020, Biotechnology reports.
[21] Yunpu Zheng,et al. Design of high-oleic tobacco (Nicotiana tabacum L.) seed oil by CRISPR-Cas9-mediated knockout of NtFAD2–2 , 2020, BMC Plant Biology.
[22] F. Toldrá,et al. Trends in Biodiesel Production from Animal Fat Waste , 2020, Applied Sciences.
[23] Bisheswar Karmakar,et al. Delonix regia heterogeneous catalyzed two-step biodiesel production from Pongamia pinnata oil using methanol and 2-propanol , 2020 .
[24] Bandar S. Aljuaid,et al. Transcriptome Analysis of Jojoba (Simmondsia chinensis) during Seed Development and Liquid Wax Ester Biosynthesis , 2020, Plants.
[25] Fangyuan Yu,et al. Transcriptome analysis of metabolic pathways associated with oil accumulation in developing seed kernels of Styrax tonkinensis, a woody biodiesel species , 2020, BMC Plant Biology.
[26] S. Mohan,et al. Obscure yet Promising Oleaginous Yeasts for Fuel and Chemical Production. , 2020, Trends in biotechnology.
[27] M. A. Aziz,et al. Two-stage cultivation strategy for simultaneous increases in growth rate and lipid content of microalgae: A review , 2020 .
[28] S. A. H. Goli,et al. Unlocking the potential of walnut husk extract in the production of waste cooking oil-based biodiesel , 2020 .
[29] Lixia Yuan,et al. Metabolic Engineering a Model Oilseed Camelina sativa for the Sustainable Production of High-Value Designed Oils , 2020, Frontiers in Plant Science.
[30] Bisheswar Karmakar,et al. Sulfonated catalytic esterification of Madhuca indica oil using waste Delonix regia: L16 Taguchi optimization and kinetics , 2020 .
[31] Hwai Chyuan Ong,et al. Patent landscape review on biodiesel production: Technology updates , 2020 .
[32] E. Jin,et al. Enhanced lipid productivity in AGP knockout marine microalga Tetraselmis sp. using a DNA-free CRISPR-Cas9 RNP method. , 2020, Bioresource technology.
[33] Kuihua Han,et al. Experimental investigation on biodiesel production through transesterification promoted by the La-dolomite catalyst , 2019 .
[34] Y. S. Mekonnen,et al. Optimized Biodiesel Production from Waste Cooking Oil (WCO) using Calcium Oxide (CaO) Nano-catalyst , 2019, Scientific Reports.
[35] A. R. Reddy,et al. Dynamics of metabolites and key regulatory proteins in the developing seeds of Pongamia pinnata, a potential biofuel tree species , 2019, Industrial Crops and Products.
[36] O. Barbosa,et al. Immobilization of lipases on hydrophobic supports: immobilization mechanism, advantages, problems, and solutions. , 2019, Biotechnology advances.
[37] M. Abdullah,et al. Life cycle assessment of waste cooking oil for biodiesel production using waste chicken eggshell derived CaO as catalyst via transesterification , 2019, Biocatalysis and Agricultural Biotechnology.
[38] A. Sapre,et al. CRISPR–Cas9 System for Genome Engineering of Photosynthetic Microalgae , 2019, Molecular Biotechnology.
[39] D. Hegedus,et al. CRISPR/Cas9 editing of three CRUCIFERIN C homoeologues alters the seed protein profile in Camelina sativa , 2019, BMC Plant Biology.
[40] Adebisi A. Okeleye,et al. Development of a Novel Mesoporous Biocatalyst Derived from Kola Nut Pod Husk for Conversion of Kariya Seed Oil to Methyl Esters: A Case of Synthesis, Modeling and Optimization Studies , 2019, Catalysis Letters.
[41] Ling Yuan,et al. WRINKLED1, a “Master Regulator” in Transcriptional Control of Plant Oil Biosynthesis , 2019, Plants.
[42] S. Venkata Mohan,et al. Non-lethal nitrate supplementation enhances photosystem II efficiency in mixotrophic microalgae towards the synthesis of proteins and lipids. , 2019, Bioresource technology.
[43] M. Vásquez,et al. High-efficiency nuclear transformation of the microalgae Nannochloropsis oceanica using Tn5 Transposome for the generation of altered lipid accumulation phenotypes , 2019, Biotechnology for Biofuels.
[44] P. Show,et al. Waste to bioenergy: a review on the recent conversion technologies , 2019, BMC Energy.
[45] R. Selvaraj,et al. A comprehensive review of biodiesel production methods from various feedstocks , 2019 .
[46] K. Rajendran,et al. Artificial neural network–genetic algorithm-based optimization of biodiesel production from Simarouba glauca , 2019 .
[47] J. Agudelo,et al. Chemical and nanostructural characteristics of the particulate matter produced by renewable diesel fuel in an automotive diesel engine , 2019, Combustion and Flame.
[48] D. W. Dhar,et al. In situ transesterification and prediction of fuel quality parameters of biodiesel produced from Botryococcus sp. MCC31 , 2019, Biofuels.
[49] R. Misaki,et al. Delta-9 fatty acid desaturase overexpression enhanced lipid production and oleic acid content in Rhodosporidium toruloides for preferable yeast lipid production. , 2019, Journal of bioscience and bioengineering.
[50] Victoria O. Odude,et al. Application of Agricultural Waste-Based Catalysts to Transesterification of Esterified Palm Kernel Oil into Biodiesel: A Case of Banana Fruit Peel Versus Cocoa Pod Husk , 2019 .
[51] Masanori Watanabe,et al. Efficient bioconversion of enzymatic corncob hydrolysate into biomass and lipids by oleaginous yeast Rhodosporidium paludigenum KM281510 , 2019, Preparative biochemistry & biotechnology.
[52] Sarah D’Adamo,et al. CRISPR–Cas ribonucleoprotein mediated homology-directed repair for efficient targeted genome editing in microalgae Nannochloropsis oceanica IMET1 , 2019, Biotechnology for Biofuels.
[53] Lin Lin,et al. Catalysis in biodiesel production—a review , 2019, Clean Energy.
[54] Bisheswar Karmakar,et al. Progress and future of biodiesel synthesis: Advancements in oil extraction and conversion technologies , 2019, Energy Conversion and Management.
[55] S. Capareda,et al. Upgrading of Scenedesmus obliquus oil to high-quality liquid-phase biofuel by nickel-impregnated biochar catalyst , 2019, Journal of Cleaner Production.
[56] Zhongjie Wu,et al. Catalytic performance of strontium oxide supported by MIL–100(Fe) derivate as transesterification catalyst for biodiesel production , 2019, Energy Conversion and Management.
[57] Xueqin Lv,et al. Combinatorial pathway enzyme engineering and host engineering overcomes pyruvate overflow and enhances overproduction of N-acetylglucosamine in Bacillus subtilis , 2019, Microbial Cell Factories.
[58] A. Subathira,et al. Artificial neural network modeling-coupled genetic algorithm optimization of supercritical methanol transesterification of Aegle marmelos oil to biodiesel , 2018, Biofuels.
[59] I. Wahby,et al. Nitrate Reductase Inhibition Induces Lipid Enhancement of Dunaliella Tertiolecta for Biodiesel Production , 2018, TheScientificWorldJournal.
[60] A. B. Fadhil,et al. Transesterification of non-edible oils over potassium acetate impregnated CaO solid base catalyst , 2018, Fuel.
[61] Mostafa R. Abukhadra,et al. K+ trapped kaolinite (Kaol/K+) as low cost and eco-friendly basic heterogeneous catalyst in the transesterification of commercial waste cooking oil into biodiesel , 2018, Energy Conversion and Management.
[62] J. Vakros. Biochars and Their Use as Transesterification Catalysts for Biodiesel Production: A Short Review , 2018, Catalysts.
[63] Yuanhui Zhang,et al. Renewable diesel blendstocks produced by hydrothermal liquefaction of wet biowaste , 2018, Nature Sustainability.
[64] C. Su,et al. Sugarcane bagasse as a novel carbon source for heterotrophic cultivation of oleaginous microalga Schizochytrium sp. , 2018, Industrial Crops and Products.
[65] B. Dien,et al. Engineering Candida phangngensis-an oleaginous yeast from the Yarrowia clade-for enhanced detoxification of lignocellulose-derived inhibitors and lipid overproduction. , 2018, FEMS yeast research.
[66] R. Varshney,et al. Genome sequence of Jatropha curcas L., a non‐edible biodiesel plant, provides a resource to improve seed‐related traits , 2018, Plant biotechnology journal.
[67] Osagie A. Osadolor,et al. Lignocellulose integration to 1G-ethanol process using filamentous fungi: fermentation prospects of edible strain of Neurospora intermedia , 2018, BMC Biotechnology.
[68] L. Steyn,et al. Production of single cell oil from cane molasses by Rhodotorula kratochvilovae (syn, Rhodosporidium kratochvilovae) SY89 as a biodiesel feedstock , 2018, Chemistry Central Journal.
[69] Chaofu Lu,et al. Towards the synthetic design of camelina oil enriched in tailored acetyl-triacylglycerols with medium-chain fatty acids , 2018, Journal of experimental botany.
[70] Ulrika Rova,et al. Heterotrophic cultivation of Auxenochlorella protothecoides using forest biomass as a feedstock for sustainable biodiesel production , 2018, Biotechnology for Biofuels.
[71] Lindsay Soh,et al. Cloud point and crystallization in fatty acid ethyl ester biodiesel mixtures with and without additives , 2018, Fuel.
[72] Dipesh Kumar,et al. Cement wastes as transesterification catalysts for the production of biodiesel from Karanja oil , 2018 .
[73] Jo-Shu Chang,et al. Improvements in algal lipid production: a systems biology and gene editing approach , 2018, Critical Reviews in Biotechnology.
[74] R. Haslam,et al. Overexpression of acetyl-CoA synthetase (ACS) enhances the biosynthesis of neutral lipids and starch in the green microalga Chlamydomonas reinhardtii , 2018 .
[75] Bisheswar Karmakar,et al. Optimization of biodiesel production from castor oil by Taguchi design , 2018 .
[76] E. M. Farré,et al. Nontransgenic Marker-Free Gene Disruption by an Episomal CRISPR System in the Oleaginous Microalga, Nannochloropsis oceanica CCMP1779. , 2018, ACS synthetic biology.
[77] Gokul Raghavendr,et al. Comprehensive Study on Biodiesel Produced from Waste AnimalFats-A Review , 2018 .
[78] R. Dunn. Correlating the Cloud Point of Biodiesel to the Concentration and Melting Properties of the Component Fatty Acid Methyl Esters , 2018 .
[79] I. Ng,et al. CRISPRi mediated phosphoenolpyruvate carboxylase regulation to enhance the production of lipid in Chlamydomonas reinhardtii. , 2017, Bioresource technology.
[80] W. Yongmanitchai,et al. Lipid production from a mixture of sugarcane top hydrolysate and biodiesel-derived crude glycerol by the oleaginous red yeast, Rhodosporidiobolus fluvialis , 2017 .
[81] Timothy A. Bodisco,et al. Engine blow-by with oxygenated fuels: A comparative study into cold and hot start operation , 2017 .
[82] Timothy A. Bodisco,et al. Investigation of microalgae HTL fuel effects on diesel engine performance and exhaust emissions using surrogate fuels , 2017 .
[83] Tao Huai,et al. Greenhouse gas emissions from heavy-duty natural gas, hybrid, and conventional diesel on-road trucks during freight transport , 2017 .
[84] S. P. Sineoky,et al. Co-expression of glucose-6-phosphate dehydrogenase and acyl-CoA binding protein enhances lipid accumulation in the yeast Yarrowia lipolytica. , 2017, New biotechnology.
[85] B. Cheirsilp,et al. Immobilized oleaginous microalgae for production of lipid and phytoremediation of secondary effluent from palm oil mill in fluidized bed photobioreactor. , 2017, Bioresource technology.
[86] Y. S. Negi,et al. Fostering triacylglycerol accumulation in novel oleaginous yeast Cryptococcus psychrotolerans IITRFD utilizing groundnut shell for improved biodiesel production. , 2017, Bioresource technology.
[87] Sumit Kumar,et al. Molecular insights into photosynthesis and carbohydrate metabolism in Jatropha curcas grown under elevated CO2 using transcriptome sequencing and assembly , 2017, Scientific Reports.
[88] P. Nanda,et al. A comparative study of stability characteristics of mahua and jatropha biodiesel and their blends , 2017, Journal of King Saud University - Engineering Sciences.
[89] Y. Chang,et al. Improvement of biomass and lipid yield under stress conditions by using diploid strains of Chlamydomonas reinhardtii , 2017 .
[90] Jai Gopal Gupta,et al. Potential and challenges for large-scale application of biodiesel in automotive sector. , 2017 .
[91] Timothy A. Bodisco,et al. Engine Performance during Transient and Steady-State Operation with Oxygenated Fuels , 2017 .
[92] M. Spalding,et al. A novel activation domain is essential for CIA5-mediated gene regulation in response to CO 2 changes in Chlamydomonas reinhardtii , 2017 .
[93] V. Agrawal,et al. Analysis of genetic diversity and population genetic structure in Simarouba glauca DC. (an important bio-energy crop) employing ISSR and SRAP markers , 2017 .
[94] G. Halder,et al. Parametric optimization of biodiesel synthesis from rubber seed oil using iron doped carbon catalyst by Taguchi approach , 2017 .
[95] N. El-Gendy,et al. Evaluation of fuel properties for microalgae Spirulina platensis bio-diesel and its blends with Egyptian petro-diesel , 2017 .
[96] Sumit Kumar,et al. Physiological and molecular insights into the high salinity tolerance of Pongamia pinnata (L.) pierre, a potential biofuel tree species. , 2017, Plant science : an international journal of experimental plant biology.
[97] Pankaj Singh,et al. Lipid production and molecular dynamics simulation for regulation of accD gene in cyanobacteria under different N and P regimes , 2017, Biotechnology for Biofuels.
[98] Yuan-Kun Lee,et al. Expression of the heterologous Dunaliella tertiolecta fatty acyl-ACP thioesterase leads to increased lipid production in Chlamydomonas reinhardtii. , 2017, Journal of biotechnology.
[99] L. Gissot,et al. Selective gene dosage by CRISPR‐Cas9 genome editing in hexaploid Camelina sativa , 2017, Plant biotechnology journal.
[100] Jiayan Wang,et al. Highly stable gasified straw slag as a novel solid base catalyst for the effective synthesis of biodiesel: Characteristics and performance , 2017 .
[101] M. Menkiti,et al. Optimization of biodiesel production from refined cotton seed oil and its characterization , 2017 .
[102] S. Mayfield,et al. Towards a synthetic nuclear transcription system in green algae: Characterization of Chlamydomonas reinhardtii nuclear transcription factors and identification of targeted promoters , 2017 .
[103] P. S. Prasad,et al. Novel Heterogeneous SO3Na‐Carbon Transesterification Catalyst for the Production of Biodiesel , 2017 .
[104] A. R. Reddy,et al. Involvement of glyoxalases and glutathione reductase in conferring abiotic stress tolerance to Jatropha curcas L. , 2017 .
[105] E. Cahoon,et al. Significant enhancement of fatty acid composition in seeds of the allohexaploid, Camelina sativa, using CRISPR/Cas9 gene editing , 2017, Plant biotechnology journal.
[106] A. Gedanken,et al. In-Situ Transesterification of Chlorella vulgaris Using Carbon-Dot Functionalized Strontium Oxide as a Heterogeneous Catalyst under Microwave Irradiation , 2016 .
[107] Jian Xu,et al. Genome editing of model oleaginous microalgae Nannochloropsis spp. by CRISPR/Cas9. , 2016, The Plant journal : for cell and molecular biology.
[108] R. Kopp,et al. IPCC reasons for concern regarding climate change risks , 2016 .
[109] S. R. Pratap,et al. The Kinetics of the transesterification of Simarouba glauca oil for the production of biofuel using zirconia-based catalysts , 2016 .
[110] A. R. Reddy,et al. Unravelling molecular mechanisms from floral initiation to lipid biosynthesis in a promising biofuel tree species, Pongamia pinnata using transcriptome analysis , 2016, Scientific Reports.
[111] M. Tepfer,et al. Camelina, a Swiss knife for plant lipid biotechnology , 2016 .
[112] G. Halder,et al. Parametric effects and optimization on synthesis of iron (II) doped carbonaceous catalyst for the production of biodiesel , 2016 .
[113] P. Winge,et al. A CRISPR/Cas9 system adapted for gene editing in marine algae , 2016, Scientific Reports.
[114] A. B. Fadhil,et al. Potassium acetate supported on activated carbon for transesterification of new non-edible oil, bitter almond oil , 2016 .
[115] C. Bowler,et al. Knockdown of phosphoenolpyruvate carboxykinase increases carbon flux to lipid synthesis in Phaeodactylum tricornutum , 2016 .
[116] G. Blanc,et al. Lipidomic and transcriptomic analyses of Chlamydomonas reinhardtii under heat stress unveil a direct route for the conversion of membrane lipids into storage lipids. , 2016, Plant, cell & environment.
[117] F. Bracharz,et al. Genetic engineering and production of modified fatty acids by the non-conventional oleaginous yeast Trichosporon oleaginosus ATCC 20509 , 2016 .
[118] Jin Liu,et al. Lipid Production from Nannochloropsis , 2016, Marine drugs.
[119] K. Corscadden,et al. An evaluation of biodiesel production from Camelina sativa grown in Nova Scotia. , 2016 .
[120] Pratyoosh Shukla,et al. Microalgal bioengineering for sustainable energy development: Recent transgenesis and metabolic engineering strategies , 2016, Biotechnology journal.
[121] Zahira Yaakob,et al. Biotechnology for Jatropha improvement: A worthy exploration , 2016 .
[122] B. Jha,et al. Micropropagation of elite genotype of Jatropha curcas L. through enhanced axillary bud proliferation and ex vitro rooting , 2015 .
[123] Zhaohui Hu,et al. A photorespiratory bypass increases plant growth and seed yield in biofuel crop Camelinasativa , 2015, Biotechnology for Biofuels.
[124] Lei Fang,et al. Genomic Foundation of Starch-to-Lipid Switch in Oleaginous Chlorella spp.1 , 2015, Plant Physiology.
[125] P. Mäki-Arvela,et al. Towards carbon efficient biorefining : Multifunctional mesoporous solid acids obtained from biodiesel production wastes for biomass conversion , 2015 .
[126] K. Malins,et al. Synthesis of activated carbon based heterogenous acid catalyst for biodiesel preparation , 2015 .
[127] Olivera S. Stamenković,et al. Purification of crude biodiesel obtained by heterogeneously-catalyzed transesterification , 2015 .
[128] Z. Ristovski,et al. Particle emissions from microalgae biodiesel combustion and their relative oxidative potential. , 2015, Environmental science. Processes & impacts.
[129] Qikun Jia,et al. The influence of cultivation period on growth and biodiesel properties of microalga Nannochloropsis gaditana 1049. , 2015, Bioresource technology.
[130] Arif Hidayat,et al. Esterification of Palm Fatty Acid Distillate with High Amount of Free Fatty Acids Using Coconut Shell Char Based Catalyst , 2015 .
[131] J. Ohlrogge,et al. Metabolic engineering of oilseed crops to produce high levels of novel acetyl glyceride oils with reduced viscosity, freezing point and calorific value. , 2015, Plant biotechnology journal.
[132] Hua Xu,et al. Enhanced biomass and oil production from sugarcane bagasse hydrolysate (SBH) by heterotrophic oleaginous microalga Chlorella protothecoides. , 2015, Bioresource technology.
[133] S. Venkata Mohan,et al. Heterotrophic microalgae cultivation to synergize biodiesel production with waste remediation: progress and perspectives. , 2015, Bioresource technology.
[134] M. Suh,et al. Overexpression of ArabidopsisWRI1 enhanced seed mass and storage oil content in Camelina sativa , 2015, Plant Biotechnology Reports.
[135] Dehua Liu,et al. Lipase-catalyzed process for biodiesel production: Enzyme immobilization, process simulation and optimization , 2015 .
[136] V. Chimote,et al. Sex Identification in Polygamodioecious Simarouba (Simarouba glauca DC) Using RAPD and ISSR Markers , 2015 .
[137] Jian'an Zhang,et al. Enhanced lipid production with undetoxified corncob hydrolysate by Rhodotorula glutinis using a high cell density culture strategy. , 2015, Bioresource technology.
[138] Richard J. Brown,et al. Combustion analysis of microalgae methyl ester in a common rail direct injection diesel engine , 2015 .
[139] Qingyu Wu,et al. Genome-Based Metabolic Mapping and 13C Flux Analysis Reveal Systematic Properties of an Oleaginous Microalga Chlorella protothecoides1[OPEN] , 2014, Plant Physiology.
[140] J. Rubim,et al. Cadmium and Tin Magnetic Nanocatalysts Useful for Biodiesel Production , 2014 .
[141] O. Choi,et al. Biodiesel production from wet municipal sludge: evaluation of in situ transesterification using xylene as a cosolvent. , 2014, Bioresource technology.
[142] L. Rangan,et al. Nuclear DNA content of Pongamia pinnata L. and genome size stability of in vitro-regenerated plantlets , 2014, Protoplasma.
[143] Andrew G. Sharpe,et al. The emerging biofuel crop Camelina sativa retains a highly undifferentiated hexaploid genome structure , 2014, Nature Communications.
[144] Kang Ning,et al. Choreography of Transcriptomes and Lipidomes of Nannochloropsis Reveals the Mechanisms of Oil Synthesis in Microalgae[W][OPEN] , 2014, Plant Cell.
[145] S. Jokić,et al. Pressing and supercritical CO2 extraction of Camelina sativa oil , 2014 .
[146] Z. Chi,et al. Direct conversion of cassava starch into single cell oil by co-cultures of the oleaginous yeast Rhodosporidium toruloides and immobilized amylases-producing yeast Saccharomycopsis fibuligera , 2014 .
[147] Chao Huang,et al. Bioconversion of Corncob Acid Hydrolysate into Microbial Oil by the Oleaginous Yeast Lipomyces starkeyi , 2014, Applied Biochemistry and Biotechnology.
[148] Sarah R. Smith,et al. Metabolic engineering of lipid catabolism increases microalgal lipid accumulation without compromising growth , 2013, Proceedings of the National Academy of Sciences.
[149] Wei-dong Yang,et al. Improvement of Neutral Lipid and Polyunsaturated Fatty Acid Biosynthesis by Overexpressing a Type 2 Diacylglycerol Acyltransferase in Marine Diatom Phaeodactylum tricornutum , 2013, Marine drugs.
[150] K. Mockaitis,et al. Camelina seed transcriptome: a tool for meal and oil improvement and translational research. , 2013, Plant biotechnology journal.
[151] C. S. Lin,et al. Food waste as nutrient source in heterotrophic microalgae cultivation. , 2013, Bioresource technology.
[152] M. Burkart,et al. Engineering fatty acid biosynthesis in microalgae for sustainable biodiesel. , 2013, Current opinion in chemical biology.
[153] Naoko Ellis,et al. Biochar-based catalyst for simultaneous reactions of esterification and transesterification , 2013 .
[154] H. Sovová,et al. A biorefinery from Nannochloropsis sp. microalga--extraction of oils and pigments. Production of biohydrogen from the leftover biomass. , 2013, Bioresource technology.
[155] Tianzhu Zhang,et al. Life cycle assessment of biodiesel production in China. , 2013, Bioresource technology.
[156] Haji Hassan Masjuki,et al. Non-edible vegetable oils: A critical evaluation of oil extraction, fatty acid compositions, biodiesel production, characteristics, engine performance and emissions production , 2013 .
[157] I. M. Atadashi,et al. The effects of catalysts in biodiesel production: A review , 2013 .
[158] R. M. Willis,et al. Biodiesel from Microalgae, Yeast, and Bacteria: Engine Performance and Exhaust Emissions , 2013 .
[159] M. Choudhary,et al. Biodiesel production from microalgal isolates of southern Pakistan and quantification of FAMEs by GC-MS/MS analysis , 2012, Chemistry Central Journal.
[160] M. El-sheekh,et al. Mixotrophic and heterotrophic growth of some microalgae using extract of fungal-treated wheat bran , 2012, International Journal Of Recycling of Organic Waste in Agriculture.
[161] Luis A. Rios,et al. Oxidative stability and cold flow behavior of palm, sacha-inchi, jatropha and castor oil biodiesel blends , 2012 .
[162] Z. Xiu,et al. Synthesis of biodiesel from acidified soybean soapstock using a lignin-derived carbonaceous catalyst , 2012 .
[163] Jie Bao,et al. Simultaneous saccharification and microbial lipid fermentation of corn stover by oleaginous yeast Trichosporon cutaneum. , 2012, Bioresource technology.
[164] Haji Hassan Masjuki,et al. A comprehensive review on biodiesel as an alternative energy resource and its characteristics , 2012 .
[165] Nestor U. Soriano,et al. Evaluation of Biodiesel Derived from Camelina sativa Oil , 2012 .
[166] Kang-Shin Chen,et al. Improving biodiesel yields from waste cooking oil by using sodium methoxide and a microwave heating system , 2012 .
[167] Yangmin Gong,et al. Characterization of a novel thioesterase (PtTE) from Phaeodactylum tricornutum , 2011, Journal of basic microbiology.
[168] Haji Hassan Masjuki,et al. A review on prospect of Jatropha curcas for biodiesel in Indonesia , 2011 .
[169] Shu-lin Chen,et al. Oil production by oleaginous yeasts using the hydrolysate from pretreatment of wheat straw with dilute sulfuric acid. , 2011, Bioresource technology.
[170] Yousef Haik,et al. Combustion of algae oil methyl ester in an indirect injection diesel engine , 2011 .
[171] Feng Chen,et al. Biodiesel production from crude cottonseed oil: an optimization process using response surface methodology. , 2011 .
[172] Anoop Singh,et al. Production of liquid biofuels from renewable resources , 2011 .
[173] Mustafa Balat,et al. Potential alternatives to edible oils for biodiesel production - A review of current work , 2011 .
[174] Penglin Li,et al. In Situ Biodiesel Production from Fast-Growing and High Oil Content Chlorella pyrenoidosa in Rice Straw Hydrolysate , 2011, Journal of biomedicine & biotechnology.
[175] Wouter Achten,et al. Life cycle assessment of Jatropha biodiesel as transportation fuel in rural India , 2010 .
[176] C. Raines. Increasing Photosynthetic Carbon Assimilation in C3 Plants to Improve Crop Yield: Current and Future Strategies , 2010, Plant Physiology.
[177] Saeid Baroutian,et al. Potassium hydroxide catalyst supported on palm shell activated carbon for transesterification of palm oil , 2010 .
[178] S. Bhatia,et al. ULTRASONIC-ASSISTED BIODIESEL PRODUCTION PROCESS FROM PALM OIL USING ALKALINE EARTH METAL OXIDES AS THE HETEROGENEOUS CATALYSTS , 2010 .
[179] Chun Sheng Goh,et al. Process optimization for methyl ester production from waste cooking oil using activated carbon supported potassium fluoride , 2009 .
[180] Rashmi,et al. Prospects of biodiesel production from microalgae in India , 2009 .
[181] X. Miao,et al. Effective acid-catalyzed transesterification for biodiesel production. , 2009 .
[182] Ş. Altun,et al. Biodiesel production from inedible animal tallow and an experimental investigation of its use as alternative fuel in a direct injection diesel engine , 2009 .
[183] Farooq Anwar,et al. Optimization of alkaline transesterification of rice bran oil for biodiesel production using response surface methodology. , 2009 .
[184] S. Yamanaka,et al. Heterogeneous catalysis of calcium oxide used for transesterification of soybean oil with refluxing methanol , 2009 .
[185] A. Ahmad,et al. Process Optimization for Biodiesel Production from Waste Cooking Palm Oil (Elaeis guineensis) Using Response Surface Methodology , 2009 .
[186] H. Vrubel,et al. Use of anhydrous sodium molybdate as an efficient heterogeneous catalyst for soybean oil methanolysis , 2008 .
[187] M. Almeida,et al. Comparison of the performance of different homogeneous alkali catalysts during transesterification of waste and virgin oils and evaluation of biodiesel quality , 2008 .
[188] Junhua Zhang,et al. Acid-catalyzed esterification of Zanthoxylum bungeanum seed oil with high free fatty acids for biodiesel production. , 2008, Bioresource technology.
[189] M. Ramos,et al. Transesterification of sunflower oil over zeolites using different metal loading: A case of leaching and agglomeration studies , 2008 .
[190] Yujun Wang,et al. Calcium methoxide as a solid base catalyst for the transesterification of soybean oil to biodiesel with methanol , 2008 .
[191] U. Rashid,et al. Production of biodiesel through optimized alkaline-catalyzed transesterification of rapeseed oil , 2008 .
[192] Y. Chisti. Biodiesel from microalgae beats bioethanol. , 2008, Trends in biotechnology.
[193] Avinash Kumar Agarwal,et al. Performance and emissions characteristics of Jatropha oil (preheated and blends) in a direct injection compression ignition engine , 2007 .
[194] Shigeru Shigeoka,et al. Contribution of fructose-1,6-bisphosphatase and sedoheptulose-1,7-bisphosphatase to the photosynthetic rate and carbon flow in the Calvin cycle in transgenic plants. , 2006, Plant & cell physiology.
[195] P. Rangsunvigit,et al. Transesterification of crude palm kernel oil and crude coconut oil by different solid catalysts , 2006 .
[196] G. Knothe. Dependence of biodiesel fuel properties on the structure of fatty acid alkyl esters , 2005 .
[197] H. Raheman,et al. Diesel engine emissions and performance from blends of karanja methyl ester and diesel , 2004 .
[198] Md. Nurun Nabi,et al. The Fuel Properties Of Pyrolytic Oils Derived From Carbonaceous Solid Wastes In Bangladesh , 2003 .
[199] G. Molaeimanesh,et al. Performance and emission characteristics of biodiesel fuel from Dunaliella tertiolecta microalgae , 2022 .
[200] Wenlei Xie,et al. Immobilized polymeric sulfonated ionic liquid on core-shell structured Fe3O4/SiO2 composites: A magnetically recyclable catalyst for simultaneous transesterification and esterifications of low-cost oils to biodiesel , 2020 .
[201] D. Ghosh,et al. Lipid recovery from oleaginous yeasts: Perspectives and challenges for industrial applications , 2020 .
[202] Mingjie Jin,et al. Microbial lipid production from dilute acid and dilute alkali pretreated corn stover via Trichosporon dermatis. , 2019, Bioresource technology.
[203] S. Venkata Mohan,et al. Algal biorefinery models with self-sustainable closed loop approach: Trends and prospective for blue-bioeconomy. , 2019, Bioresource technology.
[204] D. Bockey. The significance and perspective of biodiesel production – A European and global view , 2019, OCL.
[205] K. A. Subramanian,et al. Comprehensive review of combustion, performance and emissions characteristics of a compression ignition engine fueled with hydroprocessed renewable diesel , 2018 .
[206] Pirapan Polburee,et al. Molecular cloning and overexpression of DGA1, an acyl-CoA-dependent diacylglycerol acyltransferase, in the oleaginous yeast Rhodosporidiobolus fluvialis DMKU-RK253. , 2018, Microbiology.
[207] Cherng-Yuan Lin,et al. COMPARISON OF FATTY ACID COMPOSITIONS AND FUEL CHARACTERISTICS OF BIODIESELS MADE FROM ISOCHRYSIS GALBANA LIPIDS AND FROM USED COOKING OIL , 2017 .
[208] Zhenhong Yuan,et al. Discovery of genes for production of biofuels through transcriptome sequencing of Dunaliella parva , 2016 .
[209] K. Permaul,et al. Advances in synthesis of biodiesel via enzyme catalysis : Novel and sustainable approaches , 2015 .
[210] A. Shaija,et al. A review on the extraction of lipid from microalgae for biodiesel production , 2015 .
[211] Wei-dong Yang,et al. Genetic improvement of the microalga Phaeodactylum tricornutum for boosting neutral lipid accumulation. , 2015, Metabolic engineering.
[212] Bhaskar Singh,et al. Towards a sustainable approach for development of biodiesel from plant and microalgae , 2014 .
[213] Girma Biresaw,et al. New crop oils—Properties as potential lubricants , 2013 .
[214] A. R. Reddy,et al. De novo transcriptome analysis of an imminent biofuel crop, Camelina sativa L. using Illumina GAIIX sequencing platform and identification of SSR markers , 2013, Plant Molecular Biology.
[215] Naveen Kumar,et al. A study on the performance and emission of a diesel engine fueled with Jatropha biodiesel oil and its blends , 2012 .
[216] Richard J. Murphy,et al. Global developments in the competition for land from biofuels , 2011 .
[217] S. Keera,et al. Transesterification of vegetable oil to biodiesel fuel using alkaline catalyst , 2011 .
[218] Ayato Kawashima,et al. Acceleration of catalytic activity of calcium oxide for biodiesel production. , 2009, Bioresource technology.