Lignin triggers irreversible cellulase loss during pretreated lignocellulosic biomass saccharification
暂无分享,去创建一个
Bruce E Dale | Timothy A. Whitehead | Timothy A Whitehead | Venkatesh Balan | Venkatesh Balan | B. Dale | Shishir P. S. Chundawat | Dahai Gao | Dahai Gao | Carolyn Haarmeyer | Carolyn Haarmeyer | Shishir PS Chundawat
[1] A. Meyer,et al. Evaluation of Minimal Trichoderma reesei Cellulase Mixtures on Differently Pretreated Barley Straw Substrates , 2007, Biotechnology progress.
[2] M. Himmel,et al. Multi-scale visualization and characterization of lignocellulosic plant cell wall deconstruction during thermochemical pretreatment , 2011 .
[3] B. Fox,et al. Expression, purification and characterization of a functional carbohydrate-binding module from Streptomyces sp. SirexAA-E. , 2014, Protein expression and purification.
[4] J. Ståhlberg,et al. Trichoderma reesei has no true exo-cellulase: all intact and truncated cellulases produce new reducing end groups on cellulose. , 1993, Biochimica et biophysica acta.
[5] O. Shoseyov,et al. Carbohydrate Binding Modules: Biochemical Properties and Novel Applications , 2006, Microbiology and Molecular Biology Reviews.
[6] C. Felby,et al. Enzymatic conversion of lignocellulose into fermentable sugars: challenges and opportunities , 2007 .
[7] M. Penttilä,et al. Role of the interdomain linker peptide of Trichoderma reesei cellobiohydrolase I in its interaction with crystalline cellulose. , 1993, The Journal of biological chemistry.
[8] Christina M. Payne,et al. Glycosylated linkers in multimodular lignocellulose-degrading enzymes dynamically bind to cellulose , 2013, Proceedings of the National Academy of Sciences.
[9] Liisa Viikari,et al. Inhibition of enzymatic hydrolysis by residual lignins from softwood—study of enzyme binding and inactivation on lignin‐rich surface , 2011, Biotechnology and bioengineering.
[10] L. Viikari,et al. Restriction of the enzymatic hydrolysis of steam-pretreated spruce by lignin and hemicellulose , 2010 .
[11] Chris Somerville,et al. Cellulose synthesis in higher plants. , 2006, Annual review of cell and developmental biology.
[12] B. Simmons,et al. Understanding the impact of ionic liquid pretreatment on eucalyptus , 2010 .
[13] Frits Goedegebuur,et al. Hypocrea jecorina CEL6A protein engineering , 2010, Biotechnology for biofuels.
[14] Venkatesh Balan,et al. Strategy for Identification of Novel Fungal and Bacterial Glycosyl Hydrolase Hybrid Mixtures that can Efficiently Saccharify Pretreated Lignocellulosic Biomass , 2010, BioEnergy Research.
[15] Bruce E Dale,et al. Deconstruction of lignocellulosic biomass to fuels and chemicals. , 2011, Annual review of chemical and biomolecular engineering.
[16] Stephen R. Decker,et al. Predicting Enzyme Adsorption to Lignin Films by Calculating Enzyme Surface Hydrophobicity* , 2014, The Journal of Biological Chemistry.
[17] Seema Singh,et al. Visualization of biomass solubilization and cellulose regeneration during ionic liquid pretreatment of switchgrass , 2009, Biotechnology and bioengineering.
[18] Bruce E Dale,et al. Multifaceted characterization of cell wall decomposition products formed during ammonia fiber expansion (AFEX) and dilute acid based pretreatments. , 2010, Bioresource technology.
[19] I. S. Pretorius,et al. Microbial Cellulose Utilization: Fundamentals and Biotechnology , 2002, Microbiology and Molecular Biology Reviews.
[20] B. Kuhlman,et al. Computational protein design with explicit consideration of surface hydrophobic patches , 2012, Proteins.
[21] Venkatesh Balan,et al. Proteomics-based compositional analysis of complex cellulase-hemicellulase mixtures. , 2011, Journal of proteome research.
[22] Richard A Dixon,et al. Lignin modification improves fermentable sugar yields for biofuel production , 2007, Nature Biotechnology.
[23] J. Y. Zhu,et al. pH-Induced lignin surface modification to reduce nonspecific cellulase binding and enhance enzymatic saccharification of lignocelluloses. , 2013, ChemSusChem.
[24] Rajeev Kumar,et al. Cellulase adsorption and relationship to features of corn stover solids produced by leading pretreatments , 2009, Biotechnology and bioengineering.
[25] Venkatesh Balan,et al. Influence of physico-chemical changes on enzymatic digestibility of ionic liquid and AFEX pretreated corn stover. , 2011, Bioresource technology.
[26] Jack N Saddler,et al. Enhancing the enzymatic hydrolysis of lignocellulosic biomass by increasing the carboxylic acid content of the associated lignin , 2011, Biotechnology and bioengineering.
[27] Bruce E Dale,et al. High-throughput microplate technique for enzymatic hydrolysis of lignocellulosic biomass. , 2008, Biotechnology and bioengineering.
[28] Maobing Tu,et al. Weak lignin-binding enzymes , 2005, Applied biochemistry and biotechnology.
[29] David K. Johnson,et al. Biomass Recalcitrance: Engineering Plants and Enzymes for Biofuels Production , 2007, Science.
[30] A. Annila,et al. Identification of functionally important amino acids in the cellulose‐binding domain of Trichoderma reesei cellobiohydrolase I , 1995, Protein science : a publication of the Protein Society.
[31] Linoj Kumar,et al. The lignin present in steam pretreated softwood binds enzymes and limits cellulose accessibility. , 2012, Bioresource technology.
[32] Guido Zacchi,et al. Adsorption of Trichoderma reesei CBH I and EG II and their catalytic domains on steam pretreated softwood and isolated lignin. , 2004, Journal of biotechnology.
[33] F. Studier,et al. Protein production by auto-induction in high density shaking cultures. , 2005, Protein expression and purification.
[34] B. Dale,et al. The impacts of pretreatment on the fermentability of pretreated lignocellulosic biomass: a comparative evaluation between ammonia fiber expansion and dilute acid pretreatment , 2009, Biotechnology for biofuels.
[35] J. Walton,et al. Rapid optimization of enzyme mixtures for deconstruction of diverse pretreatment/biomass feedstock combinations , 2010, Biotechnology for biofuels.
[36] Venkatesh Balan,et al. Increased enzyme binding to substrate is not necessary for more efficient cellulose hydrolysis , 2013, Proceedings of the National Academy of Sciences.
[37] William W. Ward,et al. SPECTRAL PERTURBATIONS OF THE AEQUOREA GREEN‐FLUORESCENT PROTEIN , 1982 .
[38] G. Findenegg,et al. Structure, Stability, and Activity of Adsorbed Enzymes , 1997, Journal of colloid and interface science.
[39] C. Acebal,et al. Thermoinactivation of cellobiohydrolase I from Trichoderma reesei QM 9414 , 1995 .
[40] Maobing Tu,et al. Recycling Cellulases during the Hydrolysis of Steam Exploded and Ethanol Pretreated Lodgepole Pine , 2007, Biotechnology progress.
[41] Lee R Lynd,et al. A transition from cellulose swelling to cellulose dissolution by o-phosphoric acid: evidence from enzymatic hydrolysis and supramolecular structure. , 2006, Biomacromolecules.
[42] H. Gruppen,et al. Characterization of oligomeric xylan structures from corn fiber resistant to pretreatment and simultaneous saccharification and fermentation. , 2010, Journal of agricultural and food chemistry.
[43] Xuejun Pan. Role of Functional Groups in Lignin Inhibition of Enzymatic Hydrolysis of Cellulose to Glucose , 2008 .
[44] M. Penttilä,et al. High Speed Atomic Force Microscopy Visualizes Processive Movement of Trichoderma reesei Cellobiohydrolase I on Crystalline Cellulose* , 2009, The Journal of Biological Chemistry.
[45] H. Gilbert,et al. Carbohydrate-binding modules promote the enzymatic deconstruction of intact plant cell walls by targeting and proximity effects , 2010, Proceedings of the National Academy of Sciences.
[46] Mark F. Davis,et al. Cellulase digestibility of pretreated biomass is limited by cellulose accessibility , 2007, Biotechnology and bioengineering.
[47] C. Haynes,et al. Characterization and affinity applications of cellulose-binding domains. , 1998, Journal of chromatography. B, Biomedical sciences and applications.
[48] G. Phillips,et al. Restructuring the crystalline cellulose hydrogen bond network enhances its depolymerization rate. , 2011, Journal of the American Chemical Society.
[49] M. Mandels,et al. Stability of the Cellulase of Trichoderma reesei under use conditions , 1980, Biotechnology and bioengineering.
[50] O. Rojas,et al. Preferential adsorption and activity of monocomponent cellulases on lignocellulose thin films with varying lignin content. , 2013, Biomacromolecules.
[51] K. Brown,et al. Partition of enzymes between the solvent and insoluble substrate during the hydrolysis of lignocellulose by cellulases , 2008 .
[52] Michael R. Ladisch,et al. Inhibition of cellulases by phenols , 2010 .
[53] C. Wyman,et al. Combined sugar yields for dilute sulfuric acid pretreatment of corn stover followed by enzymatic hydrolysis of the remaining solids. , 2005, Bioresource technology.
[54] T. Houfek,et al. Transcriptional Regulation of Biomass-degrading Enzymes in the Filamentous Fungus Trichoderma reesei* , 2003, Journal of Biological Chemistry.
[55] Charles E. Wyman,et al. An improved method to directly estimate cellulase adsorption on biomass solids , 2008 .
[56] Svein Jarle Horn,et al. Novel enzymes for the degradation of cellulose , 2012, Biotechnology for Biofuels.
[57] L. Viikari,et al. Adsorption of monocomponent enzymes in enzyme mixture analyzed quantitatively during hydrolysis of lignocellulose substrates. , 2011, Bioresource technology.
[58] C. Wilkerson,et al. Monolignol Ferulate Transferase Introduces Chemically Labile Linkages into the Lignin Backbone , 2014, Science.
[59] A. Björkman. Isolation of Lignin from Finely Divided Wood with Neutral Solvents , 1954, Nature.
[60] Staffan Persson,et al. Toward a Systems Approach to Understanding Plant Cell Walls , 2004, Science.
[61] Bruce E Dale,et al. Mixture optimization of six core glycosyl hydrolases for maximizing saccharification of ammonia fiber expansion (AFEX) pretreated corn stover. , 2010, Bioresource technology.
[62] Y. Shoham,et al. Microbial hemicellulases. , 2003, Current opinion in microbiology.
[63] Venkatesh Balan,et al. Probing the nature of AFEX-pretreated corn stover derived decomposition products that inhibit cellulase activity. , 2014, Bioresource technology.
[64] Charlotte K. Williams,et al. The Path Forward for Biofuels and Biomaterials , 2006, Science.
[65] Charles E Wyman,et al. BSA treatment to enhance enzymatic hydrolysis of cellulose in lignin containing substrates , 2006, Biotechnology and bioengineering.
[66] W. Delano. The PyMOL Molecular Graphics System , 2002 .
[67] Venkatesh Balan,et al. Binding characteristics of Trichoderma reesei cellulases on untreated, ammonia fiber expansion (AFEX), and dilute‐acid pretreated lignocellulosic biomass , 2011, Biotechnology and bioengineering.
[68] Johan Börjesson,et al. Use of surface active additives in enzymatic hydrolysis of wheat straw lignocellulose , 2007 .
[69] Y.‐H.P. Zhang,et al. Simple protein purification through affinity adsorption on regenerated amorphous cellulose followed by intein self-cleavage. , 2008, Journal of chromatography. A.
[70] Venkatesh Balan,et al. Hemicellulases and auxiliary enzymes for improved conversion of lignocellulosic biomass to monosaccharides , 2011, Biotechnology for biofuels.
[71] Venkatesh Balan,et al. Lignocellulosic biomass pretreatment using AFEX. , 2009, Methods in molecular biology.
[72] T. Puranen,et al. Cellulase-lignin interactions-the role of carbohydrate-binding module and pH in non-productive binding. , 2013, Enzyme and microbial technology.
[73] Mark F. Davis,et al. Lignin content in natural Populus variants affects sugar release , 2011, Proceedings of the National Academy of Sciences.
[74] M. Himmel,et al. Identification of amino acids responsible for processivity in a Family 1 carbohydrate-binding module from a fungal cellulase. , 2010, The journal of physical chemistry. B.
[75] J. N. Saddler,et al. Evaluating the Distribution of Cellulases and the Recycling of Free Cellulases during the Hydrolysis of Lignocellulosic Substrates , 2007, Biotechnology progress.
[76] A. Ragauskas,et al. Assessing the molecular structure basis for biomass recalcitrance during dilute acid and hydrothermal pretreatments , 2013, Biotechnology for Biofuels.