Titania/lignin hybrid materials as a novel support for α-amylase immobilization: A comprehensive study.
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[1] Guohua Zhao,et al. Lignin from bamboo shoot shells as an activator and novel immobilizing support for α-amylase. , 2017, Food chemistry.
[2] Carlos Escamilla-Alvarado,et al. An overview of the enzyme potential in bioenergy‐producing biorefineries , 2017 .
[3] J. Zdarta,et al. Lipase B from Candida antarctica Immobilized on a Silica-Lignin Matrix as a Stable and Reusable Biocatalytic System , 2016 .
[4] S. Budriene,et al. Catalytic properties of maltogenic α-amylase from Bacillus stearothermophilus immobilized onto poly(urethane urea) microparticles. , 2016, Food chemistry.
[5] S. Balachandran,et al. Immobilization of diastase α-amylase on nano zinc oxide. , 2016, Food chemistry.
[6] G. Absalan,et al. Efficient Immobilization of Porcine Pancreatic α-Amylase on Amino-Functionalized Magnetite Nanoparticles: Characterization and Stability Evaluation of the Immobilized Enzyme , 2016, Applied Biochemistry and Biotechnology.
[7] J. Zdarta,et al. Luffa cylindrica sponges as a thermally and chemically stable support for Aspergillus niger lipase , 2016, Biotechnology progress.
[8] B. Bugarski,et al. Immobilization of α‐amylase via adsorption on magnetic particles coated with polyaniline , 2016 .
[9] P. Hejazi,et al. Evaluating effective factors on the activity and loading of immobilized α-amylase onto magnetic nanoparticles using a response surface-desirability approach , 2016 .
[10] Ángel Berenguer-Murcia,et al. Strategies for the one-step immobilization-purification of enzymes as industrial biocatalysts. , 2015, Biotechnology advances.
[11] J. Zdarta,et al. The influence of addition of a catalyst and chelating agent on the properties of titanium dioxide synthesized via the sol–gel method , 2015, Journal of Sol-Gel Science and Technology.
[12] A. M. Kayastha,et al. Immobilisation of Fenugreek β-amylase on chitosan/PVP blend and chitosan coated PVC beads: a comparative study. , 2015, Food chemistry.
[13] Yeşeren Saylan,et al. Alanine Functionalized Magnetic Nanoparticles for Reversible Amyloglucosidase Immobilization , 2015 .
[14] Vicki Chen,et al. Enzymatic degradation of bisphenol-A with immobilized laccase on TiO2 sol–gel coated PVDF membrane , 2014 .
[15] B. Krajewska,et al. Enzyme immobilization by adsorption: a review , 2014, Adsorption.
[16] M. Yavuz,et al. Immobilization of α‐amylase via adsorption onto bentonite/chitosan composite: Determination of equilibrium, kinetics, and thermodynamic parameters , 2014 .
[17] R. Dhamodharan,et al. Immobilization of α-amylase on gum acacia stabilized magnetite nanoparticles, an easily recoverable and reusable support , 2013 .
[18] S. Ansari,et al. Polyaniline-assisted silver nanoparticles: a novel support for the immobilization of α-amylase , 2013, Applied Microbiology and Biotechnology.
[19] A. Kara,et al. Adsorption Equilibrium, Kinetics and Thermodynamics of α-Amylase on Poly(DVB-VIM)-Cu+2 Magnetic Metal-Chelate Affinity Sorbent , 2012, Applied Biochemistry and Biotechnology.
[20] A. Azam,et al. Immobilization of porcine pancreatic α-amylase on magnetic Fe2O3 nanoparticles: Applications to the hydrolysis of starch , 2012, Biotechnology and Bioprocess Engineering.
[21] P. Mohanan,et al. Activity of diastase α-amylase immobilized on polyanilines (PANIs) , 2011 .
[22] Lucia Gardossi,et al. Understanding enzyme immobilisation. , 2009, Chemical Society reviews.
[23] Alan Rosevear,et al. Immobilised biocatalysts—a critical review , 2008 .
[24] G. Bayramoglu,et al. Covalent immobilization of chloroperoxidase onto magnetic beads: Catalytic properties and stability , 2008 .
[25] A. M. Kayastha,et al. Immobilization of α-amylase from mung beans (Vigna radiata) on Amberlite MB 150 and chitosan beads : A comparative study , 2007 .
[26] A. Pandit,et al. Hydrolysis of soluble starch using Bacillus licheniformis alpha-amylase immobilized on superporous CELBEADS. , 2007, Carbohydrate research.
[27] R. Prakasham,et al. Novel Synthesis of Ferric Impregnated Silica Nanoparticles and Their Evaluation as a Matrix for Enzyme Immobilization , 2007 .
[28] S. Aksoy,et al. Activation of poly(dimer acid-co-alkyl polyamine) particles for covalent immobilization of α-amylase , 2006 .
[29] E. R. Asquieri,et al. Immobilization of Aspergillus niger glucoamylase onto a polyaniline polymer , 2005 .
[30] G. Haki,et al. Developments in industrially important thermostable enzymes: a review. , 2003, Bioresource technology.
[31] Ali,et al. Immobilization of functionally unstable catechol-2,3-dioxygenase greatly improves operational stability. , 2000, Enzyme and microbial technology.
[32] M. Y. Arica,et al. Invertase immobilized on spacer‐arm attached poly(hydroxyethyl methacrylate) membrane: Preparation and properties , 2000 .
[33] H. H. Beeftink,et al. Towards a rational design of commercial maltodextrins , 1999 .
[34] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[35] Ernst Szasz,et al. Discussion on a “rapid and accurate method for the determination of carbon in iron and its alloys” , 1915 .
[36] Jing‐Juan Xu,et al. Fabrication, characterization of Fe3O4 multilayer film and its application in promoting direct electron transfer of hemoglobin , 2006 .
[37] P. Bernfeld,et al. [17] Amylases, α and β , 1955 .