Thermophiles and the applications of their enzymes as new biocatalysts.
暂无分享,去创建一个
Paulina Cáceres-Moreno | J. Blamey | Joaquín Atalah | Giannina Espina | Jenny M Blamey | G. Espina | J. Atalah | Paulina Cáceres-Moreno
[1] F. Squina,et al. Laccase-derived lignin compounds boost cellulose oxidative enzymes AA9 , 2018, Biotechnology for Biofuels.
[2] P. Christen,et al. Aminotransferases: demonstration of homology and division into evolutionary subgroups. , 1993, European journal of biochemistry.
[3] D. Monti,et al. Novel thermostable amine transferases from hot spring metagenomes , 2017, Applied Microbiology and Biotechnology.
[4] R. Sani,et al. Thermostable Xylanase Production by Geobacillus sp. Strain DUSELR13, and Its Application in Ethanol Production with Lignocellulosic Biomass , 2018, Microorganisms.
[5] A. H. Wang,et al. Structure of the alkalohyperthermophilic Archaeoglobus fulgidus lipase contains a unique C-terminal domain essential for long-chain substrate binding. , 2009, Journal of molecular biology.
[6] M. Pátek,et al. Recent advances and challenges in the heterologous production of microbial nitrilases for biocatalytic applications , 2017, World journal of microbiology & biotechnology.
[7] D. A. Bocchini,et al. Application of crude xylanase from Bacillus licheniformis 77-2 to the bleaching of eucalyptus Kraft pulp , 2003 .
[8] M. Himmel,et al. Comparing Residue Clusters from Thermophilic and Mesophilic Enzymes Reveals Adaptive Mechanisms , 2016, PloS one.
[9] C. Vieille,et al. Hyperthermophilic Enzymes: Sources, Uses, and Molecular Mechanisms for Thermostability , 2001, Microbiology and Molecular Biology Reviews.
[10] R. Jensen,et al. A New Class of Glutamate Dehydrogenases (GDH) , 2000, The Journal of Biological Chemistry.
[11] C. Brenner. Catalysis in the nitrilase superfamily. , 2002, Current opinion in structural biology.
[12] Stephen M. Jones,et al. Electron transfer and reaction mechanism of laccases , 2015, Cellular and Molecular Life Sciences.
[13] R. Gupta,et al. Bacterial lipases: an overview of production, purification and biochemical properties , 2004, Applied Microbiology and Biotechnology.
[14] Louisa Aribi‐Zouioueche,et al. Efficient access to both enantiomers of 3-(1-hydroxyethyl)phenol by regioselective and enantioselective CAL-B-catalyzed hydrolysis of diacetate in organic media by sodium carbonate. , 2018, Chirality.
[15] Vinayagamurthy Balamurugan,et al. An overview of heterologous expression host systems for the production of recombinant proteins , 2016 .
[16] Robert M. Kelly,et al. Extremely thermophilic microorganisms as metabolic engineering platforms for production of fuels and industrial chemicals , 2015, Front. Microbiol..
[17] W. Kroutil,et al. Deracemisation of α‐Chiral Primary Amines by a One‐Pot, Two‐Step Cascade Reaction Catalysed by ω‐Transaminases , 2009 .
[18] M. Polizeli,et al. Production of Omegas-6 and 9 from the Hydrolysis of Açaí and Buriti Oils by Lipase Immobilized on a Hydrophobic Support , 2018, Molecules.
[19] Dong-Hee Yi,et al. Identification of novel thermostable taurine–pyruvate transaminase from Geobacillus thermodenitrificans for chiral amine synthesis , 2016, Applied Microbiology and Biotechnology.
[20] R. Ramasamy,et al. Electro-Kinetic study of oxygen reduction reaction catalyzed by thermophilic laccase , 2018 .
[21] J. DiRuggiero,et al. Expression and in vitro assembly of recombinant glutamate dehydrogenase from the hyperthermophilic archaeon Pyrococcus furiosus , 1995, Applied and environmental microbiology.
[22] J. Caldwell,et al. The Importance of Stereochemistry in the Clinical Pharmacokinetics of the 2-Arylpropionic Acid Non-Steroidal Anti-Inflammatory Drugs , 1984, Clinical pharmacokinetics.
[23] Garabed Antranikian,et al. Exploration of extremophiles for high temperature biotechnological processes. , 2015, Current opinion in microbiology.
[24] E. Angov,et al. Adjustment of codon usage frequencies by codon harmonization improves protein expression and folding. , 2011, Methods in molecular biology.
[25] J. Toca-Herrera,et al. Uses of Laccases in the Food Industry , 2010, Enzyme research.
[26] E. Baker,et al. Structure of XynB, a highly thermostable beta-1,4-xylanase from Dictyoglomus thermophilum Rt46B.1, at 1.8 A resolution. , 2000, Acta crystallographica. Section D, Biological crystallography.
[27] A. Adiguzel,et al. New xylanolytic enzyme from Geobacillus galactosidasius BS61 from a geothermal resource in Turkey. , 2018, International journal of biological macromolecules.
[28] On advances and challenges in biocatalysis , 2018, Nature Catalysis.
[29] D. Cowan,et al. Characterization of an inducible nitrilase from a thermophilic bacillus , 1999, Extremophiles.
[30] R. Saladino,et al. Laccase-Mediated Enhancement of the Antioxidant Activity of Propolis and Poplar Bud Exudates , 2017, ACS omega.
[31] J. Tao,et al. Cloning and optimization of a nitrilase for the synthesis of (3S)-3-cyano-5-methyl hexanoic acid , 2006 .
[32] G. Jones,et al. High Molecular Weight Plant Polyphenolics (Tannins) as Biological Antioxidants. , 1998, Journal of agricultural and food chemistry.
[33] N. Grishin,et al. Modeling of the spatial structure of eukaryotic ornithine decarboxylases , 1995, Protein science : a publication of the Protein Society.
[34] S. Lele,et al. Laccase: Properties and applications , 2009, BioResources.
[35] R. Ventorim,et al. Engineered GH11 xylanases from Orpinomyces sp. PC-2 improve techno-functional properties of bread dough. , 2018, Journal of the science of food and agriculture.
[36] G. Finne,et al. Enzymatic determination of urea and ammonia in refrigerated seafood products , 1984 .
[37] Mahdiyeh Mehran,et al. Fabrication of sensitive glutamate biosensor based on vertically aligned CNT nanoelectrode array and investigating the effect of CNTs density on the electrode performance. , 2012, Analytical chemistry.
[38] Aravind Madhavan,et al. Applications of Microbial Enzymes in Food Industry. , 2018, Food technology and biotechnology.
[39] Y. Ikenaka,et al. Microbial synthesis of (R)- and (S)-3,4-dimethoxyamphetamines through stereoselective transamination , 2003, Biotechnology Letters.
[40] D. Cowan,et al. Biochemistry and biotechnology of mesophilic and thermophilic nitrile metabolizing enzymes , 1998, Extremophiles.
[41] Ping Wang,et al. Cofactor regeneration for sustainable enzymatic biosynthesis. , 2007, Biotechnology advances.
[42] A. Stolz,et al. Conversion of aliphatic nitriles by the arylacetonitrilase from Pseudomonas fluorescens EBC191 , 2018, World Journal of Microbiology and Biotechnology.
[43] Daniela N. Correa-Llantén,et al. Production, Purification and Partial Characterization of Four Lipases from a Thermophile Isolated from Deception Island , 2013, Lipids.
[44] Pratyoosh Shukla,et al. Thermostable microbial xylanases for pulp and paper industries: trends, applications and further perspectives , 2016, World Journal of Microbiology and Biotechnology.
[45] U. Bornscheuer,et al. Bioinformatic analysis of a PLP-dependent enzyme superfamily suitable for biocatalytic applications. , 2015, Biotechnology advances.
[46] L. A. Palomares,et al. Production of recombinant proteins: challenges and solutions. , 2004, Methods in molecular biology.
[47] C. Vorgias,et al. Cloning, overexpression, and characterization of a thermoactive nitrilase from the hyperthermophilic archaeon Pyrococcus abyssi. , 2006, Protein expression and purification.
[48] M. Hubbe. Catalysts inspired by life , 2016 .
[49] M. Nishiyama,et al. Hetero-oligomeric glutamate dehydrogenase from Thermus thermophilus. , 2010, Microbiology.
[50] Jiang Li,et al. Identification and Characterization of a Novel Thermophilic, Organic Solvent Stable Lipase of Bacillus from a Hot Spring , 2017, Lipids.
[51] F. Robb,et al. Purification and characterization of NADP-specific alcohol dehydrogenase and glutamate dehydrogenase from the hyperthermophilic archaeon Thermococcus litoralis , 1994, Applied and environmental microbiology.
[52] R. Tang,et al. Enzymatic dyeing and functional finishing of textile fibres with ferulic acid , 2015 .
[53] S. Ashraf,et al. Oxidoreductases for the remediation of organic pollutants in water – a critical review , 2018, Critical reviews in biotechnology.
[54] Olga A. Gkini,et al. Molecular, biochemical and kinetic analysis of a novel, thermostable lipase (LipSm) from Stenotrophomonas maltophilia Psi-1, the first member of a new bacterial lipase family (XVIII) , 2018, Journal of Biological Research-Thessaloniki.
[55] V. Zverlov,et al. The multidomain xylanase A of the hyperthermophilic bacterium Thermotoga neapolitana is extremely thermoresistant , 1996, Applied Microbiology and Biotechnology.
[56] Javier A. Linares-Pastén,et al. Endo-xylanases as tools for production of substituted xylooligosaccharides with prebiotic properties , 2018, Applied Microbiology and Biotechnology.
[57] J. Blamey,et al. Cloning, overexpression, and characterization of a thermostable nitrilase from an Antarctic Pyrococcus sp. , 2017, Extremophiles.
[58] K. N. Sorokina,et al. Cloning, expression and characterization of the esterase estUT1 from Ureibacillus thermosphaericus which belongs to a new lipase family XVIII , 2018, Extremophiles.
[59] J. Shin,et al. Biocatalytic Asymmetric Synthesis of Unnatural Amino Acids through the Cascade Transfer of Amino Groups from Primary Amines onto Keto Acids , 2013 .
[60] Bijender Singh,et al. Development of an environmental-benign process for efficient pretreatment and saccharification of Saccharum biomasses for bioethanol production , 2019, Renewable Energy.
[61] Manuela M. Pereira,et al. A robust metallo‐oxidase from the hyperthermophilic bacterium Aquifex aeolicus , 2007, The FEBS journal.
[62] R. Berlemont,et al. Function, distribution, and annotation of characterized cellulases, xylanases, and chitinases from CAZy , 2018, Applied Microbiology and Biotechnology.
[63] M. Ali,et al. Improving the Efficiency of New Automatic Dishwashing Detergent Formulation by Addition of Thermostable Lipase, Protease and Amylase , 2017, Molecules.
[64] A. Ariff,et al. Lipase-Catalyzed Synthesis of Kojic Acid Derivative in Bioreactors and the Analysis of Its Depigmenting and Antioxidant Activities , 2017 .
[65] U. Bornscheuer,et al. Biocatalytic Production of Amino Carbohydrates through Oxidoreductase and Transaminase Cascades , 2019, ChemSusChem.
[66] S. S. Kanwar,et al. Organic Solvent Tolerant Lipases and Applications , 2014, TheScientificWorldJournal.
[67] D. Darmaun,et al. Effect of glutamine on glutathione kinetics in vivo in dogs. , 2007, The Journal of nutritional biochemistry.
[68] Pratyoosh Shukla,et al. Bioengineering of Nitrilases Towards Its Use as Green Catalyst: Applications and Perspectives , 2017, Indian Journal of Microbiology.
[69] Peiyuan Yao,et al. Nitrilase-catalyzed hydrolysis of 3-aminopropionitrile at high concentration with a tandem reaction strategy for shifting the reaction to β-alanine formation , 2015 .
[70] G. Antranikian,et al. Physiological aspects involved in production of xylanolytic enzymes by deep-sea hyperthermophilic archaeon Pyrodictium abyssi , 2001 .
[71] H. Claus. Laccases and their occurrence in prokaryotes , 2003, Archives of Microbiology.
[72] L. Pan,et al. Application of a series of biomarkers in Scallop Chlamys farreri to assess the toxic effects after exposure to a priority hazardous and noxious substance (HNS)-Acrylonitrile. , 2018, Environmental toxicology and pharmacology.
[73] B. Sewell,et al. A novel thermostable nitrilase superfamily amidase from Geobacillus pallidus showing acyl transfer activity , 2007, Applied Microbiology and Biotechnology.
[74] Veeresh Juturu,et al. Microbial xylanases: engineering, production and industrial applications. , 2012, Biotechnology advances.
[75] L. Gorton,et al. Characterisation of a thermophilic L-glutamate dehydrogenase biosensor for amperometric determination of L-glutamate by flow injection analysis. , 1999, Biosensors & bioelectronics.
[76] V. Zverlov,et al. Characterization of the arabinoxylan-degrading machinery of the thermophilic bacterium Herbinix hemicellulosilytica-Six new xylanases, three arabinofuranosidases and one xylosidase. , 2017, Journal of biotechnology.
[77] Túlio Marcos Santos,et al. Up-To-Date Insight on Industrial Enzymes Applications and Global Market , 2012 .
[78] A. Steinbüchel,et al. Plasmid addiction systems: perspectives and applications in biotechnology , 2010, Microbial biotechnology.
[79] S. Suye,et al. Design of a multi-enzyme reaction on an electrode surface for an l-glutamate biofuel anode , 2017, Biotechnology Letters.
[80] Xiuling Wu,et al. Screening and characterization of a novel thermostable lipase with detergent-additive potential from the metagenomic library of a mangrove soil. , 2017, Gene.
[81] B. Sithole,et al. Classification of lipolytic enzymes and their biotechnological applications in the pulping industry. , 2017, Canadian journal of microbiology.
[82] Per Berglund,et al. Transaminase biocatalysis: optimization and application , 2017 .
[83] J. Blamey,et al. A New Thermophilic Nitrilase from an Antarctic Hyperthermophilic Microorganism , 2016, Front. Bioeng. Biotechnol..
[84] D. Freire,et al. Characterization of the Recombinant Thermostable Lipase (Pf2001) from Pyrococcus furiosus: Effects of Thioredoxin Fusion Tag and Triton X-100 , 2011, Enzyme research.
[85] D. Wei,et al. A novel nitrilase from Ralstonia eutropha H16 and its application to nicotinic acid production , 2017, Bioprocess and Biosystems Engineering.
[86] A. Detsi,et al. A novel thermophilic laccase-like multicopper oxidase from Thermothelomyces thermophila and its application in the oxidative cyclization of 2',3,4-trihydroxychalcone. , 2019, New biotechnology.
[87] A. Basit,et al. Thermophilic xylanases: from bench to bottle , 2018, Critical reviews in biotechnology.
[88] S. Knapp,et al. Crystal structure of glutamate dehydrogenase from the hyperthermophilic eubacterium Thermotoga maritima at 3.0 A resolution. , 1997, Journal of molecular biology.
[89] Xiaofeng Zhang,et al. High-level expression of Aspergillus niger lipase in Pichia pastoris: Characterization and gastric digestion in vitro. , 2019, Food chemistry.
[90] Tzanko Tzanov,et al. Multifunctional modification of wool using an enzymatic process in aqueous-organic media. , 2009, Journal of biotechnology.
[91] Christopher F Blanford,et al. Efficient electrocatalytic oxygen reduction by the 'blue' copper oxidase, laccase, directly attached to chemically modified carbons. , 2008, Faraday discussions.
[92] M. Irfan,et al. Lipolytic bacterial strains mediated transesterification of non-edible plant oils for generation of high quality biodiesel. , 2019, Journal of bioscience and bioengineering.
[93] H. Hailes,et al. One-pot, two-step transaminase and transketolase synthesis of l-gluco-heptulose from l-arabinose. , 2018, Enzyme and microbial technology.
[94] Soo‐Young Choi,et al. Regulatory Properties of Glutamate Dehydrogenase from Sulfolobus solfataricus , 2000, Molecules and cells.
[95] Sun Bok Lee,et al. Enzymatic resolution of racemic ibuprofen by lipase-catalyzed esterification reaction: Effects of water content and solid supports , 1996 .
[96] G. Thomas,et al. Cold active microbial lipases: some hot issues and recent developments. , 2008, Biotechnology advances.
[97] Y. Murakami,et al. Characterization of native glutamate dehydrogenase from an aerobic hyperthermophilic archaeon Aeropyrum pernix K1 , 2001, Applied Microbiology and Biotechnology.
[98] K. Ochsenreither,et al. Integrated Process for the Enzymatic Production of Fatty Acid Sugar Esters Completely Based on Lignocellulosic Substrates , 2018, Front. Chem..
[99] Zhiwei Zhang,et al. High‐sensitive Electrochemical Determination of Ethyl Carbamate Using Urethanase and Glutamate Dehydrogenase Modified Electrode , 2017 .
[100] P. Widsten,et al. Laccase applications in the forest products industry : A review , 2008 .
[101] S. Hussain,et al. Bacterial lipases: A review on purification and characterization. , 2017, Progress in biophysics and molecular biology.
[102] K. Miyazaki. A hyperthermophilic laccase from Thermus thermophilus HB27 , 2005, Extremophiles.
[103] L. Lai,et al. Effect of enzyme-assisted extraction on the physicochemical properties of mucilage from the fronds of Asplenium australasicum (J. Sm.) Hook. , 2019, International journal of biological macromolecules.
[104] Vikas Sharma,et al. Production of highly thermo-tolerant laccase from novel thermophilic bacterium Bacillus sp. PC-3 and its application in functionalization of chitosan film. , 2019, Journal of bioscience and bioengineering.
[105] Matti Leisola,et al. Three‐dimensional structures of thermophilic β‐1,4‐xylanases from Chaetomium thermophilum and Nonomuraea flexuosa , 2003 .
[106] J. Mikkelsen,et al. TtMCO: A highly thermostable laccase-like multicopper oxidase from the thermophilic Thermobaculum terrenum , 2015 .
[107] J. V. van Elsas,et al. The great screen anomaly—a new frontier in product discovery through functional metagenomics , 2011, Applied Microbiology and Biotechnology.
[108] S. Schneider,et al. Climate Change 2001: Synthesis Report: A contribution of Working Groups I, II, and III to the Third Assessment Report of the Intergovernmental Panel on Climate Change , 2001 .
[109] R. Ramasamy,et al. Improved stability of multicopper oxidase carbon nanotube conjugates using a thermophilic laccase , 2018 .
[110] H. Nevalainen,et al. Making recombinant proteins in filamentous fungi- are we expecting too much? , 2014, Front. Microbiol..
[111] Xiangzheng Deng,et al. Laccases: Production, Expression Regulation, and Applications in Pharmaceutical Biodegradation , 2017, Front. Microbiol..
[112] G. Henriksson,et al. ORIGINAL RESEARCH: Sulfonation of phenolic end groups in lignin directs laccase-initiated reactions towards cross-linking , 2010 .
[114] E. Y. Bezsudnova,et al. A Novel highly thermostable branched-chain amino acid aminotransferase from the crenarchaeon Vulcanisaeta moutnovskia. , 2017, Enzyme and microbial technology.
[115] K. Piontek,et al. Crystal Structure of a Laccase from the FungusTrametes versicolor at 1.90-Å Resolution Containing a Full Complement of Coppers* , 2002, The Journal of Biological Chemistry.
[116] Byung-Gee Kim,et al. Identification of novel thermostable ω-transaminase and its application for enzymatic synthesis of chiral amines at high temperature , 2016 .
[117] Guangyu Yang,et al. Structure features of GH10 xylanase from Caldicellulosiruptor bescii: implication for its thermophilic adaption and substrate binding preference. , 2016, Acta biochimica et biophysica Sinica.
[118] Karen Robins,et al. Rational assignment of key motifs for function guides in silico enzyme identification. , 2010, Nature chemical biology.
[119] Liqun Jin,et al. Significant improvement of the nitrilase activity by semi-rational protein engineering and its application in the production of iminodiacetic acid. , 2018, International journal of biological macromolecules.
[120] Aman A Desai,et al. Sitagliptin manufacture: a compelling tale of green chemistry, process intensification, and industrial asymmetric catalysis. , 2011, Angewandte Chemie.