Nickel-Carnosine Complex: A New Carrier for Enzymes Immobilization by Affinity Adsorption
暂无分享,去创建一个
Yanjun Jiang | Jiafu Shi | Ying He | Li Ma | Li-Yi Zhou | Jing Gao | Zhihong Huang | Junyang Xu | Li Ma
[1] Jieying Liang,et al. Biocatalytic Metal–Organic Frameworks: Prospects Beyond Bioprotective Porous Matrices , 2020, Advanced Functional Materials.
[2] Gangfeng Ouyang,et al. Embedding Functional Biomacromolecules within Peptides-Directed Metal-Organic Frameworks Nanoarchitectures Enables Activity Enhancement. , 2020, Angewandte Chemie.
[3] V. Rathod,et al. Enzyme embedded metal organic framework (enzyme-MOF): De novo approaches for immobilization. , 2020, International journal of biological macromolecules.
[4] Yanjun Jiang,et al. Simple purification and immobilization of His-tagged organophosphohydrolase from cell culture supernatant by metal organic frameworks for degradation of organophosphorus pesticides. , 2019, Journal of agricultural and food chemistry.
[5] Shiru Jia,et al. Recent progress in multienzymes co-immobilization and multienzyme system applications , 2019, Chemical Engineering Journal.
[6] Hong‐Cai Zhou,et al. Modulating vs. Templating: The Fine Tuning of Hierarchally Porous PCN-250 Using Fatty Acids for Engineering Guest Adsorption. , 2019, Angewandte Chemie.
[7] Zhanhu Guo,et al. Anchoring carbon nanotubes and post-hydroxylation treatment enhanced Ni nanofiber catalysts towards efficient hydrous hydrazine decomposition for effective hydrogen generation. , 2019, Chemical communications.
[8] Qiang Xu,et al. Metal-Organic Framework Composites for Catalysis , 2019, Matter.
[9] Qipeng Yuan,et al. Metal-nucleobase hybrid nanoparticles for enhancing the activity and stability of metal-activated enzymes. , 2019, Chemical communications.
[10] Yanjun Jiang,et al. Facile Oriented Immobilization and Purification of His-Tagged Organophosphohydrolase on Viruslike Mesoporous Silica Nanoparticles for Organophosphate Bioremediation , 2018, ACS Sustainable Chemistry & Engineering.
[11] S. Jia,et al. Optimization protocols and improved strategies for metal-organic frameworks for immobilizing enzymes: Current development and future challenges , 2018, Coordination Chemistry Reviews.
[12] Hafiz M.N. Iqbal,et al. "Smart" chemistry and its application in peroxidase immobilization using different support materials. , 2018, International journal of biological macromolecules.
[13] Yanjun Jiang,et al. Enrichment and Coimmobilization of Cofactors and His-Tagged ω-Transaminase into Nanoflowers: A Facile Approach to Constructing Self-Sufficient Biocatalysts , 2018, ACS Applied Nano Materials.
[14] P. Jiang,et al. Porous NiCo2O4 nanoarray-integrated binder-free 3D open electrode offers a highly efficient sensing platform for enzyme-free glucose detection. , 2018, The Analyst.
[15] Christina T. Lollar,et al. Stable metal-organic frameworks as a host platform for catalysis and biomimetics. , 2018, Chemical communications.
[16] Jian Sun,et al. Multifunctional Hollow–Shell Microspheres Derived from Cross-Linking of MnO2 Nanoneedles by Zirconium-Based Coordination Polymer: Enzyme Mimicking, Micromotors, and Protein Immobilization , 2018 .
[17] Liang Feng,et al. Creating Hierarchical Pores by Controlled Linker Thermolysis in Multivariate Metal-Organic Frameworks. , 2018, Journal of the American Chemical Society.
[18] John M. Woodley,et al. Role of Biocatalysis in Sustainable Chemistry. , 2017, Chemical reviews.
[19] Yanjun Jiang,et al. Fabrication of Ni2+-nitrilotriacetic acid functionalized magnetic mesoporous silica nanoflowers for one pot purification and immobilization of His-tagged ω-transaminase , 2017 .
[20] R. Surampalli,et al. Degradation of chlortetracycline using immobilized laccase on Polyacrylonitrile-biochar composite nanofibrous membrane. , 2017, The Science of the total environment.
[21] Kang Liang,et al. Metal-Organic Frameworks at the Biointerface: Synthetic Strategies and Applications. , 2017, Accounts of chemical research.
[22] T. Bein,et al. Multifunctional Nanoparticles by Coordinative Self-Assembly of His-Tagged Units with Metal-Organic Frameworks. , 2017, Journal of the American Chemical Society.
[23] S. E. Moosavifard,et al. Self-templated synthesis of uniform nanoporous CuCo2O4 double-shelled hollow microspheres for high-performance asymmetric supercapacitors. , 2017, Chemical communications.
[24] Seongsoon Park,et al. Dual-Surface Functionalization of Metal-Organic Frameworks for Enhancing the Catalytic Activity of Candida antarctica Lipase B in Polar Organic Media , 2017 .
[25] Yanjun Jiang,et al. Structured interlocked-microcapsules: A novel scaffold for enzyme immobilization , 2017 .
[26] D. Ollis,et al. Organophosphate-degrading metallohydrolases: structure and function of potent catalysts for applications in bioremediation , 2016 .
[27] A. Saboury,et al. Protective effects of aspirin on the function of bovine liver catalase: A spectroscopy and molecular docking study , 2016 .
[28] Sonia Jemli,et al. Biocatalysts: application and engineering for industrial purposes , 2016, Critical reviews in biotechnology.
[29] Dongzhi Wei,et al. One-step purification and immobilization of his-tagged protein via Ni2+-functionalized Fe3O4@polydopamine magnetic nanoparticles , 2015, Biotechnology and Bioprocess Engineering.
[30] J. Ge,et al. Metal–organic frameworks and inorganic nanoflowers: a type of emerging inorganic crystal nanocarrier for enzyme immobilization , 2015 .
[31] M. Prieto,et al. A new and general model to describe, characterize, quantify and classify the interactive effects of temperature and pH on the activity of enzymes. , 2015, The Analyst.
[32] Jian Dong Cui,et al. Optimization protocols and improved strategies of cross-linked enzyme aggregates technology: current development and future challenges , 2015, Critical reviews in biotechnology.
[33] Zhenjie Zhang,et al. Why does enzyme not leach from metal-organic frameworks (MOFs)? Unveiling the interactions between an enzyme molecule and a MOF. , 2014, Inorganic chemistry.
[34] Gary J. Miller,et al. Guest-Adaptable and Water-Stable Peptide-Based Porous Materials by Imidazolate Side Chain Control , 2013, Angewandte Chemie.
[35] Mingzhen Chen,et al. Highly active, durable and recyclable ordered mesoporous magnetic organometallic catalysts for promoting organic reactions in water , 2014 .
[36] A. Liese,et al. Evaluation of Immobilized Enzymes for Industrial Applications , 2013 .
[37] C. Ortiz,et al. Modifying enzyme activity and selectivity by immobilization. , 2013, Chemical Society reviews.
[38] P. Adlercreutz,et al. Immobilisation and application of lipases in organic media. , 2013, Chemical Society reviews.
[39] Roger A Sheldon,et al. Enzyme immobilisation in biocatalysis: why, what and how. , 2013, Chemical Society reviews.
[40] M. Fröba,et al. Designing Inorganic Porous Materials for Enzyme Adsorption and Applications in Biocatalysis , 2013 .
[41] Jiwei Zhang,et al. Electrochemical lithium storage capacity of nickel mono-oxide loaded anatase titanium dioxide nanotubes , 2012, Ionics.
[42] Shengqian Ma,et al. Immobilization of MP-11 into a mesoporous metal-organic framework, MP-11@mesoMOF: a new platform for enzymatic catalysis. , 2011, Journal of the American Chemical Society.
[43] J. Ko,et al. Non-aqueous approach to the preparation of reduced graphene oxide/α-Ni(OH)2 hybrid composites and their high capacitance behavior. , 2011, Chemical communications.
[44] D. Ollis,et al. Electronic and geometric structures of the organophosphate-degrading enzyme from Agrobacterium radiobacter (OpdA) , 2011, JBIC Journal of Biological Inorganic Chemistry.
[45] Li Wei,et al. Specific and reversible immobilization of NADH oxidase on functionalized carbon nanotubes. , 2010, Journal of biotechnology.
[46] K. Balkus,et al. Hybrid materials for immobilization of MP-11 catalyst , 2006 .
[47] A. Denizli,et al. Reversible Immobilization of Catalase by Metal Chelate Affinity Interaction on Magnetic Beads , 2006 .
[48] John G. Oakeshott,et al. Identification of an opd (Organophosphate Degradation) Gene in an Agrobacterium Isolate , 2002, Applied and Environmental Microbiology.
[49] A. Torreggiani,et al. Effect of transition metal binding on the tautomeric equilibrium of the carnosine imidazolic ring , 2001 .
[50] M. Horning,et al. Interactions between carnosine and zinc and copper: implications for neuromodulation and neuroprotection. , 2000, Biochemistry. Biokhimiia.
[51] E. Baran. Metal complexes of carnosine. , 2000, Biochemistry. Biokhimiia.
[52] W. Maier,et al. Characterization of micro- and mesoporous solids by physisorption methods and pore-size analysis , 1998 .
[53] J. T. Szymański,et al. Crystallographic studies of metal-peptide complexes. V. (Beta-alanyl-L-histidinato)copper(II)dihydrate. , 1967, Acta crystallographica.