Overexpression of a rice BAHD acyltransferase gene in switchgrass (Panicum virgatum L.) enhances saccharification
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J. Keasling | H. Scheller | Seema Singh | D. Loqué | J. Mortimer | P. Ronald | E. Baidoo | Jian Sun | Chengcheng Zhang | Guotian Li | Rashmi Jain | L. Bartley | Feng Xu | Manoj K. Sharma | P. Canlas | D. Ruan | A. Eudes | Tong Wei | Phat Q. Duong | Kyle C Jones | Devon Birdseye | Venkataramana R. Pidatala | Chengcheng Zhang | Deling Ruan | Patrick E. Canlas
[1] Ajaya K. Biswal,et al. Sugar release and growth of biofuel crops are improved by downregulation of pectin biosynthesis , 2018, Nature Biotechnology.
[2] J. Sedbrook,et al. Plant Science , 2017 .
[3] R. Parthasarathi,et al. Activation of lignocellulosic biomass for higher sugar yields using aqueous ionic liquid at low severity process conditions , 2016, Biotechnology for Biofuels.
[4] Qiao Zhao. Lignification: Flexibility, Biosynthesis and Regulation. , 2016, Trends in plant science.
[5] J. Schmutz,et al. Genome-Wide Sequencing of 41 Rice (Oryza sativa L.) Mutated Lines Reveals Diverse Mutations Induced by Fast-Neutron Irradiation. , 2016, Molecular plant.
[6] O. Zabotina,et al. Decreased Polysaccharide Feruloylation Compromises Plant Cell Wall Integrity and Increases Susceptibility to Necrotrophic Fungal Pathogens , 2016, Front. Plant Sci..
[7] C. Fu,et al. Switchgrass SBP-box transcription factors PvSPL1 and 2 function redundantly to initiate side tillers and affect biomass yield of energy crop , 2016, Biotechnology for Biofuels.
[8] C. N. Stewart,et al. Identification and Overexpression of a Knotted1-Like Transcription Factor in Switchgrass (Panicum virgatum L.) for Lignocellulosic Feedstock Improvement , 2016, Front. Plant Sci..
[9] R. Dixon,et al. Combining enhanced biomass density with reduced lignin level for improved forage quality. , 2016, Plant biotechnology journal.
[10] C. Lapierre,et al. Structural Redesigning Arabidopsis Lignins into Alkali-Soluble Lignins through the Expression of p-Coumaroyl-CoA:Monolignol Transferase PMT1 , 2016, Plant Physiology.
[11] H. B. C. Molinari,et al. Ferulic acid: a key component in grass lignocellulose recalcitrance to hydrolysis. , 2015, Plant biotechnology journal.
[12] C. Chapple,et al. Genetic manipulation of lignocellulosic biomass for bioenergy. , 2015, Current opinion in chemical biology.
[13] Dan M. Bolser,et al. Ensembl Genomes 2016: more genomes, more complexity , 2015, Nucleic Acids Res..
[14] A. Ageorges,et al. BAHD or SCPL acyltransferase? What a dilemma for acylation in the world of plant phenolic compounds. , 2015, The New phytologist.
[15] C. Wilkerson,et al. Engineering Monolignol p-Coumarate Conjugates into Poplar and Arabidopsis Lignins1 , 2015, Plant Physiology.
[16] Xunzhong Zhang,et al. Assessment of drought tolerance of 49 switchgrass (Panicum virgatum) genotypes using physiological and morphological parameters , 2015, Biotechnology for Biofuels.
[17] Fan Yang,et al. Engineering temporal accumulation of a low recalcitrance polysaccharide leads to increased C6 sugar content in plant cell walls. , 2015, Plant biotechnology journal.
[18] C. N. Stewart,et al. Identification and Molecular Characterization of the Switchgrass AP2/ERF Transcription Factor Superfamily, and Overexpression of PvERF001 for Improvement of Biomass Characteristics for Biofuel , 2015, Front. Bioeng. Biotechnol..
[19] N. Carpita,et al. Biomass recalcitrance: a multi-scale, multi-factor, and conversion-specific property. , 2015, Journal of experimental botany.
[20] K. Stott,et al. An unusual xylan in Arabidopsis primary cell walls is synthesised by GUX3, IRX9L, IRX10L and IRX14 , 2015, The Plant journal : for cell and molecular biology.
[21] M. Pauly,et al. Engineering of plant cell walls for enhanced biofuel production. , 2015, Current opinion in plant biology.
[22] J. Keasling,et al. Expression of a bacterial 3‐dehydroshikimate dehydratase reduces lignin content and improves biomass saccharification efficiency , 2015, Plant biotechnology journal.
[23] C. N. Stewart,et al. Field Evaluation of Transgenic Switchgrass Plants Overexpressing PvMYB4 for Reduced Biomass Recalcitrance , 2015, BioEnergy Research.
[24] Peer Bork,et al. SMART: recent updates, new developments and status in 2015 , 2014, Nucleic Acids Res..
[25] C. N. Stewart,et al. Two-year field analysis of reduced recalcitrance transgenic switchgrass. , 2014, Plant biotechnology journal.
[26] Xuewei Chen,et al. Interaction specificity and coexpression of rice NPR1 homologs 1 and 3 (NH1 and NH3), TGA transcription factors and Negative Regulator of Resistance (NRR) proteins , 2014, BMC Genomics.
[27] J. Sedbrook,et al. p-Coumaroyl-CoA:monolignol transferase (PMT) acts specifically in the lignin biosynthetic pathway in Brachypodium distachyon , 2014, The Plant journal : for cell and molecular biology.
[28] Xirong Xiao,et al. A Genomics Approach to Deciphering Lignin Biosynthesis in Switchgrass[W] , 2013, Plant Cell.
[29] C. N. Stewart,et al. Standardization of Switchgrass Sample Collection for Cell Wall and Biomass Trait Analysis , 2013, BioEnergy Research.
[30] C. N. Stewart,et al. Enhanced characteristics of genetically modified switchgrass (Panicum virgatum L.) for high biofuel production , 2013, Biotechnology for Biofuels.
[31] Robert W. Sykes,et al. Overexpression of a BAHD Acyltransferase, OsAt10, Alters Rice Cell Wall Hydroxycinnamic Acid Content and Saccharification1[C][W][OA] , 2013, Plant Physiology.
[32] D. Schwartz,et al. Improvement of the Oryza sativa Nipponbare reference genome using next generation sequence and optical map data , 2013, Rice.
[33] J. Keasling,et al. XAX1 from glycosyltransferase family 61 mediates xylosyltransfer to rice xylan , 2012, Proceedings of the National Academy of Sciences.
[34] C. N. Stewart,et al. Overexpression of miR156 in switchgrass (Panicum virgatum L.) results in various morphological alterations and leads to improved biomass production , 2012, Plant biotechnology journal.
[35] M. M. D. O. Buanafina,et al. Modification of esterified cell wall phenolics increases vulnerability of tall fescue to herbivory by the fall armyworm , 2012, Planta.
[36] C. Wilkerson,et al. Identification of Grass-specific Enzyme That Acylates Monolignols with p-Coumarate* , 2012, The Journal of Biological Chemistry.
[37] David M. Goodstein,et al. Phytozome: a comparative platform for green plant genomics , 2011, Nucleic Acids Res..
[38] R. Dixon,et al. Silencing of 4-coumarate:coenzyme A ligase in switchgrass leads to reduced lignin content and improved fermentable sugar yields for biofuel production. , 2011, The New phytologist.
[39] B. Simmons,et al. Overexpression of the maize Corngrass1 microRNA prevents flowering, improves digestibility, and increases starch content of switchgrass , 2011, Proceedings of the National Academy of Sciences.
[40] Ruyu Li,et al. High throughput Agrobacterium-mediated switchgrass transformation , 2011 .
[41] R. Dixon,et al. Genetic manipulation of lignin reduces recalcitrance and improves ethanol production from switchgrass , 2011, Proceedings of the National Academy of Sciences.
[42] B. Dien,et al. Downregulation of Cinnamyl-Alcohol Dehydrogenase in Switchgrass by RNA Silencing Results in Enhanced Glucose Release after Cellulase Treatment , 2011, PloS one.
[43] Arthur J. Ragauskas,et al. Switchgrass as an energy crop for biofuel production: A review of its ligno-cellulosic chemical properties , 2010 .
[44] P. Ronald,et al. Genetic and biotechnological approaches for biofuel crop improvement. , 2010, Current opinion in biotechnology.
[45] John Ralph,et al. Hydroxycinnamates in lignification , 2010, Phytochemistry Reviews.
[46] J. Trethewey,et al. The distribution of ester-linked ferulic acid in the cell walls of angiosperms , 2010, Phytochemistry Reviews.
[47] M. M. D. O. Buanafina. Feruloylation in Grasses: Current and Future Perspectives , 2009 .
[48] R. Zhong,et al. Down-regulation of PoGT47C expression in poplar results in a reduced glucuronoxylan content and an increased wood digestibility by cellulase. , 2009, Plant & cell physiology.
[49] Joshua S Yuan,et al. Plants to power: bioenergy to fuel the future. , 2008, Trends in plant science.
[50] J. Vogel. Unique aspects of the grass cell wall. , 2008, Current opinion in plant biology.
[51] Rodrigo Lopez,et al. Clustal W and Clustal X version 2.0 , 2007, Bioinform..
[52] Richard A Dixon,et al. Lignin modification improves fermentable sugar yields for biofuel production , 2007, Nature Biotechnology.
[53] R. Malvar,et al. Phenolics in maize genotypes differing in susceptibility to Gibberella stalk rot (Fusarium graminearum Schwabe). , 2007, Journal of agricultural and food chemistry.
[54] Michael Q. Wang,et al. Life-cycle energy and greenhouse gas emission impacts of different corn ethanol plant types , 2007 .
[55] Paul Dupree,et al. A Novel Bioinformatics Approach Identifies Candidate Genes for the Synthesis and Feruloylation of Arabinoxylan1[W][OA] , 2007, Plant Physiology.
[56] H. Scheller,et al. Rhamnogalacturonan I in Solanum tuberosum tubers contains complex arabinogalactan structures. , 2004, Phytochemistry.
[57] R. Hartley,et al. Linkage of p-coumaroyl and feruloyl groups to cell-wall polysaccharides of barley straw , 1986 .
[58] G. L. Miller. Use of Dinitrosalicylic Acid Reagent for Determination of Reducing Sugar , 1959 .
[59] H. Scheller,et al. Xylan biosynthesis. , 2014, Current opinion in biotechnology.
[60] Marcia M de O Buanafina,et al. Feruloylation in grasses: current and future perspectives. , 2009, Molecular plant.
[61] F. Goubet,et al. Polysaccharide analysis using carbohydrate gel electrophoresis: a method to study plant cell wall polysaccharides and polysaccharide hydrolases. , 2002, Analytical biochemistry.