Glucose selective surface plasmon resonance-based bis-boronic acid sensor.
暂无分享,去创建一个
Y. Long | J. Preece | P. Iqbal | T. James | A. Stephenson-Brown | J. Fossey | P. Mendes | Hui-Chen Wang | Yitao Long
[1] Yi-Tao Long,et al. A bis-boronic acid modified electrode for the sensitive and selective determination of glucose concentrations. , 2013, The Analyst.
[2] Xin Wu,et al. Selective sensing of saccharides using simple boronic acids and their aggregates. , 2013, Chemical Society reviews.
[3] T. James,et al. Glucose sensing via aggregation and the use of "knock-out" binding to improve selectivity. , 2013, Journal of the American Chemical Society.
[4] F. Marken,et al. The development of boronic acids as sensors and separation tools. , 2012, Chemical record.
[5] J. Callow,et al. Model Organic Surfaces to Probe Marine Bacterial Adhesion Kinetics by Surface Plasmon Resonance , 2012 .
[6] A. Myburg,et al. Cellulose factories: advancing bioenergy production from forest trees. , 2012, The New phytologist.
[7] Stephen E. Flower,et al. Biotinylated boronic acid fluorophore conjugates: Quencher elimination strategy for imaging and saccharide detection , 2012 .
[8] Stephen E. Flower,et al. Field-effect saccharide sensing using AlGaN/GaN heterostructures and boronic acid based chemical receptors , 2011 .
[9] Jui-Che Lin,et al. Improving the surface biocompatibility with the use of mixed zwitterionic self-assembled monolayers prepared by a proper solvent. , 2011, Langmuir : the ACS journal of surfaces and colloids.
[10] H. Ho,et al. Simultaneous purification and surface plasmon resonance characterization of mechanoresponsive, discretely functionalized gold nanoparticles , 2011 .
[11] T. James,et al. Boronic acid building blocks: tools for sensing and separation. , 2011, Chemical communications.
[12] T. James,et al. Boronic acid building blocks: tools for self assembly. , 2011, Chemical communications.
[13] J. Preece,et al. Tuning Specific Biomolecular Interactions Using Electro‐Switchable Oligopeptide Surfaces , 2010 .
[14] Jun Liu,et al. Glucose oxidase-graphene-chitosan modified electrode for direct electrochemistry and glucose sensing. , 2009, Biosensors & bioelectronics.
[15] A surface plasmon enhanced fluorescence sensor platform , 2009 .
[16] Naoki Takahara,et al. Fabrication of glucose-sensitive TiO2 ultrathin films by molecular imprinting and selective detection of monosaccharides , 2008 .
[17] T. James,et al. "Click-fluors": modular fluorescent saccharide sensors based on a 1,2,3-triazole ring. , 2008, The Journal of organic chemistry.
[18] J. F. Stoddart,et al. Electrochemically controllable conjugation of proteins on surfaces. , 2007, Bioconjugate chemistry.
[19] M. Morgan,et al. Detection of Salmonella enteritidis Using a Miniature Optical Surface Plasmon Resonance Biosensor , 2007 .
[20] A. Gopalan,et al. Electrospun poly(vinylidene fluoride)/poly(aminophenylboronic acid) composite nanofibrous membrane as a novel glucose sensor. , 2007, Analytical biochemistry.
[21] S. Shinkai,et al. Boronic Acids in Saccharide Recognition , 2006 .
[22] Sejin Park,et al. Electrochemical non-enzymatic glucose sensors. , 2006, Analytica chimica acta.
[23] Yoshio Aoki,et al. Development of palm-sized differential plasmon resonance meter based on concept of Sprode , 2005 .
[24] Shaoyi Jiang,et al. Protein adsorption on oligo(ethylene glycol)-terminated alkanethiolate self-assembled monolayers: The molecular basis for nonfouling behavior. , 2005, The journal of physical chemistry. B.
[25] I. Godsland,et al. Loss of beta cell function as fasting glucose increases in the non-diabetic range , 2004, Diabetologia.
[26] S. Wild,et al. Global prevalence of diabetes: estimates for the year 2000 and projections for 2030. , 2004, Diabetes care.
[27] J. B. Pitner,et al. Direct detection of glucose by surface plasmon resonance with bacterial glucose/galactose-binding protein. , 2004, Biosensors & bioelectronics.
[28] Igor K Lednev,et al. High ionic strength glucose-sensing photonic crystal. , 2003, Analytical chemistry.
[29] Minsu Lee,et al. Formation of a self-assembled phenylboronic acid monolayer and its application toward developing a surface plasmon resonance-based monosaccharide sensor. , 2002, Analytical biochemistry.
[30] Michael S Freund,et al. Potentiometric saccharide detection based on the pK(a) changes of poly(aniline boronic acid). , 2002, Journal of the American Chemical Society.
[31] A. B. Descalzo,et al. Open-chain polyazaalkanes functionalised with pyrene groups as sensing fluorogenic receptors for metal ions , 2002 .
[32] M. L. Bell,et al. Modular fluorescence sensors for saccharides. , 2002, Chemical communications.
[33] D. Reinhoudt,et al. Functionalization of self‐assembled monolayers on glass and oxidized silicon wafers by surface reactions , 2001 .
[34] Haiyang Li,et al. Structural investigation of a new series of azobenzene-containing self-assembled monolayers on gold , 1999 .
[35] Simeon I. Taylor,et al. Deconstructing Type 2 Diabetes , 1999, Cell.
[36] S. Asher,et al. Polymerized colloidal crystal hydrogel films as intelligent chemical sensing materials , 1997, Nature.
[37] P. Schuck,et al. Use of surface plasmon resonance to probe the equilibrium and dynamic aspects of interactions between biological macromolecules. , 1997, Annual review of biophysics and biomolecular structure.
[38] A. Ulman,et al. Formation and Structure of Self-Assembled Monolayers. , 1996, Chemical reviews.
[39] George M. Whitesides,et al. Self-Assembled Monolayers Containing .omega.-Mercaptoalkyl boronic Acids Adsorbed onto Gold Form a Highly Cross-Linked, Thermally Stable Borate Glass Surface , 1994 .
[40] G. Whitesides,et al. Comparison of self-assembled monolayers on gold: coadsorption of thiols and disulfides , 1989 .
[41] G. Whitesides,et al. Formation of monolayer films by the spontaneous assembly of organic thiols from solution onto gold , 1989 .