Improving enzymatic polyurethane hydrolysis by tuning enzyme sorption
暂无分享,去创建一个
Alessandro Pellis | Georg M. Guebitz | Enrique Herrero Acero | Georg Steinkellner | Karl Gruber | Andreas Ortner | G. Guebitz | K. Gruber | A. Pellis | E. H. Acero | A. Ortner | Gernot A. Strohmeier | Doris Ribitsch | Sabine Zitzenbacher | Barbara Zartl | R. Vielnascher | Caroline Gamerith | D. Ribitsch | Sabine Zitzenbacher | G. Steinkellner | K. Haernvall | Caroline Gamerith | Robert Vielnascher | Daniel Luschnig | Karolina Haernvall | Oskar Hoff | Oskar Hoff | Barbara Zartl | Daniel Luschnig | Robert Vielnascher | Karolina Haernvall
[1] M. Hashimoto,et al. The roles of the C-terminal domain and type III domains of chitinase A1 from Bacillus circulans WL-12 in chitin degradation , 1994, Journal of bacteriology.
[2] T. Narikawa,et al. Effect of limited tryptic modification of a bacterial poly(3-hydroxybutyrate) depolymerase on its catalytic activity. , 1988, Biochimica et biophysica acta.
[3] T. Deguchi,et al. Gene Structures and Catalytic Mechanisms of Microbial Enzymes Able to Blodegrade the Synthetic Solid Polymers Nylon and Polyester Polyurethaoe , 2001, Biotechnology & genetic engineering reviews.
[4] Jae-Hoon Choi,et al. Comparison of initial filtration resistance by pretreatment processes in the nanofiltration for drinking water treatment , 2007 .
[5] J. Santerre,et al. Elastase-induced hydrolysis of synthetic solid substrates: poly(ester-urea-urethane) and poly(ether-urea-urethane). , 1996, Biomaterials.
[6] Margarida Casal,et al. Influence of mechanical agitation on cutinases and protease activity towards polyamide substrates , 2007 .
[7] M. S. Mohyeldin,et al. Mild and highly flexible enzyme-catalyzed modification of poly(ethersulfone) membranes. , 2011, ACS applied materials & interfaces.
[8] Gianluca Ciardelli,et al. Polyurethane-based scaffolds for myocardial tissue engineering , 2014, Interface Focus.
[9] Clarisse Ribeiro,et al. Bioactive albumin functionalized polylactic acid membranes for improved biocompatibility , 2013 .
[10] G. Guebitz,et al. Enhanced cutinase-catalyzed hydrolysis of polyethylene terephthalate 1 by covalent fusion to hydrophobins 2 3 , 2015 .
[11] Maike Rabe,et al. Enzymatic and chemical hydrolysis of poly(ethylene terephthalate) fabrics , 2008 .
[12] G. Guebitz,et al. Enzymatic surface hydrolysis of poly(ethylene terephthalate) and bis(benzoyloxyethyl) terephthalate by lipase and cutinase in the presence of surface active molecules. , 2009, Journal of biotechnology.
[13] Artur Cavaco-Paulo,et al. A novel aryl acylamidase from Nocardia farcinica hydrolyses polyamide , 2009, Biotechnology and bioengineering.
[14] Alessandro Pellis,et al. Biocatalyzed approach for the surface functionalization of poly(L‐lactic acid) films using hydrolytic enzymes , 2015, Biotechnology journal.
[15] T. Nakahara,et al. Microbial degradation of polyurethane, polyester polyurethanes and polyether polyurethanes , 1999, Applied Microbiology and Biotechnology.
[16] G. Guebitz,et al. Two Novel Class II Hydrophobins from Trichoderma spp. Stimulate Enzymatic Hydrolysis of Poly(Ethylene Terephthalate) when Expressed as Fusion Proteins , 2013, Applied and Environmental Microbiology.
[17] N. Esaki,et al. A novel esterase from a psychrotrophic bacterium, Acinetobacter sp. strain no. 6, that belongs to the amidase signature family , 2003 .
[18] Jens Meiler,et al. ROSETTA3: an object-oriented software suite for the simulation and design of macromolecules. , 2011, Methods in enzymology.
[19] Jian Chen,et al. Characterization of Thermobifida fusca Cutinase-Carbohydrate-Binding Module Fusion Proteins and Their Potential Application in Bioscouring , 2010, Applied and Environmental Microbiology.
[20] W. Deckwer,et al. Mechanism and kinetics of the enzymatic hydrolysis of polyester nanoparticles by lipases , 2006 .
[21] A. Hiltner,et al. Degradation of a poly(ether urethane urea) elastomer: infra-red and XPS studies , 1987 .
[22] V. Nierstrasz,et al. Enzymatic surface modification of poly(ethylene terephthalate). , 2005, Journal of biotechnology.
[23] J. Santerre,et al. Biodegradation evaluation of polyether and polyester-urethanes with oxidative and hydrolytic enzymes. , 1994, Journal of biomedical materials research.
[24] G. B. Wang,et al. Biodegradation of a poly(ester)urea-urethane by cholesterol esterase: isolation and identification of principal biodegradation products. , 1997, Journal of biomedical materials research.
[25] Rolf-Joachim Mueller,et al. Biological degradation of synthetic polyesters—Enzymes as potential catalysts for polyester recycling , 2006 .
[26] Frederic Bigey,et al. Acyl Transfer Activity of an Amidase from Rhodococcussp. Strain R312: Formation of a Wide Range of Hydroxamic Acids , 1998, Applied and Environmental Microbiology.
[27] Ernst Schmachtenberg,et al. International Plastics Handbook : The Resource for Plastics Engineers , 2006 .
[28] R. Brückner,et al. Mild and High‐Yielding Molybdenum(VI) Dichloride Dioxide‐Catalyzed Formation of Mono‐, Di‐, Tri‐, and Tetracarbamates from Alcohols and Aromatic or Aliphatic Isocyanates , 2012 .
[29] J. Lahann. Click Chemistry for Biotechnology and Materials Science , 2009 .
[30] Wolfgang Zimmermann,et al. Synthetic polyester-hydrolyzing enzymes from thermophilic actinomycetes. , 2014, Advances in applied microbiology.
[31] Wolfgang Zimmermann,et al. Ca2+ and Mg2+ binding site engineering increases the degradation of polyethylene terephthalate films by polyester hydrolases from Thermobifida fusca. , 2015, Biotechnology journal.
[32] T. Nakahara,et al. Purification and Properties of a Polyester Polyurethane-Degrading Enzyme from Comamonas acidovorans TB-35 , 1998, Applied and Environmental Microbiology.
[33] P. Hägglund,et al. A cellulose-binding module of the Trichoderma reesei beta-mannanase Man5A increases the mannan-hydrolysis of complex substrates. , 2003, Journal of biotechnology.
[34] T. Nakahara,et al. Purification and properties of culture-broth-secreted esterase from the polyurethane degrader Comamonas acidovorans TB-35. , 1999, Journal of bioscience and bioengineering.
[35] Gibson S. Nyanhongo,et al. Two-step enzymatic functionalisation of polyamide with phenolics , 2012 .
[36] Amir Kiumarsi,et al. Biohydrolysis of nylon 6,6 fiber with different proteolytic enzymes , 2009 .
[37] Herbert Pobeheim,et al. New model substrates for enzymes hydrolysing polyethyleneterephthalate and polyamide fibres. , 2006, Journal of biochemical and biophysical methods.
[38] H. Yamada,et al. Purification and characterization of aryl acylamidase from Nocardia globerula. , 1991, European journal of biochemistry.
[39] Margarida Casal,et al. Tailoring cutinase activity towards polyethylene terephthalate and polyamide 6,6 fibers. , 2007, Journal of biotechnology.
[40] A. Hiltner,et al. Biodegradation of a polyurethane in vitro. , 1987, Journal of biomedical materials research.
[41] A. Cavaco‐Paulo,et al. Surface hydrolysis of polyamide with a new polyamidase from Beauveria brongniartii , 2008 .
[42] Z. Xiang,et al. Advances in homology protein structure modeling. , 2006, Current protein & peptide science.
[43] G. T. Howard,et al. Cloning and expression in Escherichia coli of apolyurethane-degrading enzyme from Pseudomonasfluorescens , 1999 .
[44] J. Santerre,et al. Application of macromolecular additives to reduce the hydrolytic degradation of polyurethanes by lysosomal enzymes. , 1997, Biomaterials.
[45] Manfred Zinn,et al. Enzymatic surface hydrolysis of PET : effect of structural diversity on kinetic properties of cutinases from thermobifida , 2011 .
[46] G. Guebitz,et al. A New Esterase from Thermobifida halotolerans Hydrolyses Polyethylene Terephthalate (PET) and Polylactic Acid (PLA) , 2012 .
[47] G. Guebitz,et al. Hydrolysis of polyethyleneterephthalate by p‐nitrobenzylesterase from Bacillus subtilis , 2011, Biotechnology progress.
[48] Gert Vriend,et al. Making optimal use of empirical energy functions: Force‐field parameterization in crystal space , 2004, Proteins.
[49] Artur Cavaco-Paulo,et al. New enzymes with potential for PET surface modification , 2004 .
[50] James R. Campbell,et al. Biodegradation of a colloidal ester-based polyurethane by soil fungi , 1994 .
[51] G. Guebitz,et al. Characterization of a new cutinase from Thermobifida alba for PET-surface hydrolysis , 2012 .
[52] J. Santerre,et al. The effect of hard segment size on the hydrolytic stability of polyether-urea-urethanes when exposed to cholesterol esterase. , 1997, Journal of biomedical materials research.
[53] Hirofumi Hirai,et al. Degradation of Polyethylene and Nylon-66 by the Laccase-Mediator System , 2001 .
[54] Ren Wei,et al. Effect of hydrolysis products on the enzymatic degradation of polyethylene terephthalate nanoparticles by a polyester hydrolase from Thermobifida fusca , 2015 .
[55] G. Guebitz,et al. Enzymatic surface hydrolysis of PET enhances bonding in PVC coating , 2008 .
[56] Enrique Herrero Acero,et al. Fusion of binding domains to Thermobifida cellulosilytica cutinase to tune sorption characteristics and enhancing PET hydrolysis. , 2013, Biomacromolecules.
[57] Tetsuya Deguchi,et al. Purification and Characterization of a Nylon-Degrading Enzyme , 1998, Applied and Environmental Microbiology.
[58] H. Sung,et al. Characterization of the degradation mechanisms of lysine-derived aliphatic poly(ester urethane) scaffolds. , 2011, Biomaterials.
[59] Jian Chen,et al. Enhanced activity toward PET by site-directed mutagenesis of Thermobifida fusca cutinase-CBM fusion protein. , 2013, Carbohydrate polymers.
[60] Yvonne Primerano Mascarenhas,et al. Characterization of polyurethane resins by FTIR, TGA, and XRD , 2010 .