Broad Chain-Length Specificity of the Alkane-Forming Enzymes NoCER1A and NoCER3A/B in Nymphaea odorata
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Kenro Tokuhiro | Tomoko Niwa | Hisae Kojima | Kanta Yamamoto | Takamasa Suzuki | Yuri Hayakawa | Satoshi Katahira | Tetsuya Higashiyama | Sumie Ishiguro
[1] R. Fernández-Lafuente,et al. Biosynthesis of alkanes/alkenes from fatty acids or derivatives (triacylglycerols or fatty aldehydes). , 2022, Biotechnology advances.
[2] Sudhir Kumar,et al. MEGA11: Molecular Evolutionary Genetics Analysis Version 11 , 2021, Molecular biology and evolution.
[3] Priya Panjabi,et al. Origin and diversification of ECERIFERUM1 (CER1) and ECERIFERUM3 (CER3) genes in land plants and phylogenetic evidence that the ancestral CER1/3 gene resulted from the fusion of pre-existing domains. , 2021, Molecular phylogenetics and evolution.
[4] G. Stephanopoulos,et al. Synthesis of high-titer alka(e)nes in Yarrowia lipolytica is enabled by a discovered mechanism , 2020, Nature Communications.
[5] Zhongnan Yang,et al. Arabidopsis ECERIFERUM3 (CER3) Functions to Maintain Hydration for Pollen–Stigma Recognition During Fertilization , 2020, Journal of Plant Biology.
[6] Mei Li,et al. Structural insights into catalytic mechanism and product delivery of cyanobacterial acyl-acyl carrier protein reductase , 2020, Nature Communications.
[7] Yang Liu,et al. The water lily genome and the early evolution of flowering plants , 2019, Nature.
[8] Johannes Kabisch,et al. Drop-in biofuel production using fatty acid photodecarboxylase from Chlorella variabilis in the oleaginous yeast Yarrowia lipolytica , 2019, Biotechnology for Biofuels.
[9] Hongliang Wang,et al. Molecular evolution of the plant ECERIFERUM1 and ECERIFERUM3 genes involved in aliphatic hydrocarbon production , 2019, Comput. Biol. Chem..
[10] V. Siewers,et al. Engineering Saccharomyces cerevisiae cells for production of fatty acid-derived biofuels and chemicals , 2019, Open Biology.
[11] Chih-Chien Lin,et al. Determination of Volatile Components from Live Water Lily Flowers by an Orthogonal-Array-Design-Assisted Trapping Cell , 2019, Applied Sciences.
[12] Julien Gronnier,et al. Arabidopsis CER1-LIKE1 Functions in a Cuticular Very-Long-Chain Alkane-Forming Complex1 , 2018, Plant Physiology.
[13] Zhonghua Wang,et al. OsCER1 Plays a Pivotal Role in Very-Long-Chain Alkane Biosynthesis and Affects Plastid Development and Programmed Cell Death of Tapetum in Rice (Oryza sativa L.) , 2018, Front. Plant Sci..
[14] Patrik R. Jones,et al. Synthetic metabolic pathways for photobiological conversion of CO2 into hydrocarbon fuel , 2018, bioRxiv.
[15] R. Jetter,et al. Structure and Biosynthesis of Branched Wax Compounds on Wild Type and Wax Biosynthesis Mutants of Arabidopsis thaliana , 2017, Plant & cell physiology.
[16] J. Nielsen,et al. Functional screening of aldehyde decarbonylases for long-chain alkane production by Saccharomyces cerevisiae , 2017, Microbial Cell Factories.
[17] U. Malik,et al. Volatiles and surface wax long-chain alkanes and free fatty acids from Polygonum orientale L. (Polygonaceae) flowers , 2016 .
[18] J. Rose,et al. The Plant Polyester Cutin: Biosynthesis, Structure, and Biological Roles. , 2016, Annual review of plant biology.
[19] J. Keasling,et al. Whole‐cell biocatalytic and de novo production of alkanes from free fatty acids in Saccharomyces cerevisiae , 2016, Biotechnology and bioengineering.
[20] M. Suh,et al. Advances in the understanding of cuticular waxes in Arabidopsis thaliana and crop species , 2015, Plant Cell Reports.
[21] J. Napier,et al. ECERIFERUM2-LIKE Proteins Have Unique Biochemical and Physiological Functions in Very-Long-Chain Fatty Acid Elongation1[OPEN] , 2015, Plant Physiology.
[22] Xiaoping Zhou,et al. OsGL1-3 is Involved in Cuticular Wax Biosynthesis and Tolerance to Water Deficit in Rice , 2015, PloS one.
[23] Liang‐Sheng Wang,et al. Determination of Volatiles in Water Lily Flowers Using Gas Chromatography–Mass Spectrometry , 2014 .
[24] J. Bruce German,et al. Accumulation of High-Value Lipids in Single-Cell Microorganisms: A Mechanistic Approach and Future Perspectives , 2014, Journal of agricultural and food chemistry.
[25] Y. Choi,et al. Microbial production of short-chain alkanes , 2013, Nature.
[26] L. Kunst,et al. Extending the story of very-long-chain fatty acid elongation. , 2013, Plant science : an international journal of experimental plant biology.
[27] Zhonghua Wang,et al. Rice OsGL1-6 Is Involved in Leaf Cuticular Wax Accumulation and Drought Resistance , 2013, PloS one.
[28] A. Mukherjee,et al. Alkanes in Flower Surface Waxes of Momordica cochinchinensis Influence Attraction to Aulacophora foveicollis Lucas (Coleoptera: Chrysomelidae) , 2013, Neotropical Entomology.
[29] I. Leitch,et al. Insights into the dynamics of genome size and chromosome evolution in the early diverging angiosperm lineage Nymphaeales (water lilies). , 2013, Genome.
[30] J. Napier,et al. The Arabidopsis cer26 mutant, like the cer2 mutant, is specifically affected in the very long chain fatty acid elongation process. , 2013, The Plant journal : for cell and molecular biology.
[31] Yuji Tanaka,et al. Development of the Gateway Recycling Cloning System for Multiple Linking of Expression Cassettes in a Defined Order, and Direction on Gateway Compatible Binary Vectors , 2013, Bioscience, biotechnology, and biochemistry.
[32] A. Mañas-Fernández,et al. Arabidopsis ECERIFERUM2 Is a Component of the Fatty Acid Elongation Machinery Required for Fatty Acid Extension to Exceptional Lengths1[W][OA] , 2012, Plant Physiology.
[33] T. Fricaux,et al. An insect-specific P450 oxidative decarbonylase for cuticular hydrocarbon biosynthesis , 2012, Proceedings of the National Academy of Sciences.
[34] R. Jetter,et al. Composition and Physiological Function of the Wax Layers Coating Arabidopsis Leaves: β-Amyrin Negatively Affects the Intracuticular Water Barrier1[W][OA] , 2012, Plant Physiology.
[35] J. Napier,et al. Reconstitution of Plant Alkane Biosynthesis in Yeast Demonstrates That Arabidopsis ECERIFERUM1 and ECERIFERUM3 Are Core Components of a Very-Long-Chain Alkane Synthesis Complex[C][W] , 2012, Plant Cell.
[36] S. Henry,et al. Metabolism and Regulation of Glycerolipids in the Yeast Saccharomyces cerevisiae , 2012, Genetics.
[37] Jian-min Chen,et al. Rice OsGL1-1 is involved in leaf cuticular wax and cuticle membrane. , 2011, Molecular plant.
[38] C. Krebs,et al. Detection of formate, rather than carbon monoxide, as the stoichiometric coproduct in conversion of fatty aldehydes to alkanes by a cyanobacterial aldehyde decarbonylase. , 2011, Journal of the American Chemical Society.
[39] D. Roby,et al. Overexpression of Arabidopsis ECERIFERUM1 Promotes Wax Very-Long-Chain Alkane Biosynthesis and Influences Plant Response to Biotic and Abiotic Stresses1[W] , 2011, Plant Physiology.
[40] A. Schirmer,et al. Microbial Biosynthesis of Alkanes , 2010, Science.
[41] René Lessire,et al. Three Arabidopsis Fatty Acyl-Coenzyme A Reductases, FAR1, FAR4, and FAR5, Generate Primary Fatty Alcohols Associated with Suberin Deposition1[C][W][OA] , 2010, Plant Physiology.
[42] S. Ishiguro,et al. The Arabidopsis FLAKY POLLEN1 gene encodes a 3-hydroxy-3-methylglutaryl-coenzyme A synthase required for development of tapetum-specific organelles and fertility of pollen grains. , 2010, Plant & cell physiology.
[43] Liên Bach,et al. Role of very-long-chain fatty acids in plant development, when chain length does matter. , 2010, Comptes rendus biologies.
[44] D. Kosma,et al. Arabidopsis CER8 encodes LONG-CHAIN ACYL-COA SYNTHETASE 1 (LACS1) that has overlapping functions with LACS2 in plant wax and cutin synthesis. , 2009, The Plant journal : for cell and molecular biology.
[45] M. Hamberg,et al. Functional expression of five Arabidopsis fatty acyl-CoA reductase genes in Escherichia coli. , 2009, Journal of plant physiology.
[46] L. Xiong,et al. Characterization of Glossy1-homologous genes in rice involved in leaf wax accumulation and drought resistance , 2009, Plant Molecular Biology.
[47] R. Jetter,et al. The Cytochrome P450 Enzyme CYP96A15 Is the Midchain Alkane Hydroxylase Responsible for Formation of Secondary Alcohols and Ketones in Stem Cuticular Wax of Arabidopsis1[W][OA] , 2007, Plant Physiology.
[48] L. Schreiber,et al. The CER3 wax biosynthetic gene from Arabidopsis thaliana is allelic to WAX2/YRE/FLP1 , 2007, FEBS letters.
[49] R. Jetter,et al. Composition of alkyl esters in the cuticular wax on inflorescence stems of Arabidopsis thaliana cer mutants. , 2007, The Plant journal : for cell and molecular biology.
[50] Gynheung An,et al. Wax-deficient anther1 Is Involved in Cuticle and Wax Production in Rice Anther Walls and Is Required for Pollen Development[W] , 2006, The Plant Cell Online.
[51] R. Jetter,et al. CER4 Encodes an Alcohol-Forming Fatty Acyl-Coenzyme A Reductase Involved in Cuticular Wax Production in Arabidopsis1[W] , 2006, Plant Physiology.
[52] K. Feldmann,et al. Wax constituents on the inflorescence stems of double eceriferum mutants in Arabidopsis reveal complex gene interactions. , 2005, Phytochemistry.
[53] T. Wada,et al. The YORE-YORE gene regulates multiple aspects of epidermal cell differentiation in Arabidopsis. , 2003, The Plant journal : for cell and molecular biology.
[54] S. Tabata,et al. A novel male-sterile mutant of Arabidopsis thaliana, faceless pollen-1, produces pollen with a smooth surface and an acetolysis-sensitive exine , 2003, Plant Molecular Biology.
[55] Robert L. Fischer,et al. Alterations in CER6, a Gene Identical to CUT1, Differentially Affect Long-Chain Lipid Content on the Surface of Pollen and Stems , 2000, Plant Cell.
[56] M. Pollard,et al. Purification of a jojoba embryo fatty acyl-coenzyme A reductase and expression of its cDNA in high erucic acid rapeseed. , 2000, Plant physiology.
[57] D. Taylor,et al. CUT1, an Arabidopsis Gene Required for Cuticular Wax Biosynthesis and Pollen Fertility, Encodes a Very-Long-Chain Fatty Acid Condensing Enzyme , 1999, Plant Cell.
[58] K. Kalantidis,et al. The Arabidopsis MALE STERILITY 2 protein shares similarity with reductases in elongation/condensation complexes. , 1997, The Plant journal : for cell and molecular biology.
[59] K. Feldmann,et al. Changes in epicuticular waxes on wildtype and eceriferum mutants in Arabidopsis during development , 1996 .
[60] W. Stiekema,et al. Molecular characterization of the CER1 gene of arabidopsis involved in epicuticular wax biosynthesis and pollen fertility. , 1995, The Plant cell.
[61] M. Hülskamp,et al. Identification of genes required for pollen-stigma recognition in Arabidopsis thaliana. , 1995, The Plant journal : for cell and molecular biology.
[62] K. Feldmann,et al. Leaf Epicuticular Waxes of the Eceriferum Mutants in Arabidopsis , 1995, Plant physiology.
[63] R. W. Davis,et al. A conditional sterile mutation eliminates surface components from Arabidopsis pollen and disrupts cell signaling during fertilization. , 1993, Genes & development.
[64] M. Koornneef,et al. A Genetic and Phenotypic Description of Eceriferum (cer) Mutants in Arabidopsis thaliana , 1989 .
[65] P. Kolattukudy,et al. Alkane biosynthesis by decarbonylation of aldehydes catalyzed by a particulate preparation from Pisum sativum. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[66] A L Burlingame,et al. Very Long-Chain Fatty Acids in Yeast , 1973, Journal of bacteriology.
[67] J. Joubès,et al. Arabidopsis cuticular waxes: advances in synthesis, export and regulation. , 2013, Progress in lipid research.
[68] Haiyang Wang,et al. Wax crystal-sparse leaf2, a rice homologue of WAX2/GL1, is involved in synthesis of leaf cuticular wax , 2011, Planta.
[69] S. Goodwin,et al. Cloning and Characterization of the WAX2 Gene of Arabidopsis Involved in Cuticle Membrane and Wax Production , 2003 .