Chemically controlled closed-loop insulin delivery.
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[1] K. Matyjaszewski,et al. The development of microgels/nanogels for drug delivery applications , 2008 .
[2] Robert Pelton,et al. Charge-switching, amphoteric glucose-responsive microgels with physiological swelling activity. , 2008, Biomacromolecules.
[3] Yongjun Zhang,et al. Permeability control of glucose-sensitive nanoshells. , 2007, Biomacromolecules.
[4] K. Kataoka,et al. Biodegradable nanogels prepared by atom transfer radical polymerization as potential drug delivery carriers: synthesis, biodegradation, in vitro release, and bioconjugation. , 2007, Journal of the American Chemical Society.
[5] P Ramarao,et al. Design and evaluation of biodegradable, biosensitive in situ gelling system for pulsatile delivery of insulin. , 2007, Biomaterials.
[6] C. Satish,et al. Formulation and Evaluation of Self‐Regulated Insulin Delivery System Based on poly(HEMA‐co‐DMAEMA) Hydrogels , 2007 .
[7] Robert Pelton,et al. Engineering Glucose Swelling Responses in Poly(N-isopropylacrylamide)-Based Microgels , 2007 .
[8] V. Ravaine,et al. Monodispersed glucose-responsive microgels operating at physiological salinity. , 2006, Biomacromolecules.
[9] Yongjun Zhang,et al. Synthesis and volume phase transitions of glucose-sensitive microgels. , 2006, Biomacromolecules.
[10] M. Taylor,et al. The effect of degree of acrylic derivatisation on dextran and concanavalin A glucose-responsive materials for closed-loop insulin delivery. , 2006, Biomaterials.
[11] R. Eisenthal,et al. Synthesis and characterization of a d-glucose sensitive hydrogel based on CM-dextran and concanavalin A , 2006 .
[12] S. Asher,et al. Fast responsive crystalline colloidal array photonic crystal glucose sensors. , 2006, Analytical chemistry.
[13] Yuandong Gu,et al. A microstructured silicon membrane with entrapped hydrogels for environmentally sensitive fluid gating , 2006 .
[14] K. Sawicka,et al. Glucose-responsive UV polymerised dextran-concanavalin A acrylic derivatised mixtures for closed-loop insulin delivery. , 2006, Biomaterials.
[15] R. Hovorka. Continuous glucose monitoring and closed‐loop systems , 2006, Diabetic medicine : a journal of the British Diabetic Association.
[16] S. Havelund,et al. Insulins with built‐in glucose sensors for glucose responsive insulin release , 2005, Journal of peptide science : an official publication of the European Peptide Society.
[17] D. Klonoff. Continuous glucose monitoring: roadmap for 21st century diabetes therapy. , 2005, Diabetes care.
[18] S. Havelund,et al. Reversible insulin self-assembly under carbohydrate control. , 2005, Journal of the American Chemical Society.
[19] Michael Stumvoll,et al. Type 2 diabetes: principles of pathogenesis and therapy , 2005, The Lancet.
[20] G. Steil,et al. Closed-loop insulin delivery – what lies between where we are and where we are going? , 2005, Expert opinion on drug delivery.
[21] Jeff Blyth,et al. Holographic glucose sensors. , 2005, Biosensors & bioelectronics.
[22] S. Asher,et al. Photonic crystal glucose-sensing material for noninvasive monitoring of glucose in tear fluid. , 2004, Clinical chemistry.
[23] N. Lobontiu. Mechanics of microelectromechanical systems , 2004 .
[24] Jeff Blyth,et al. Glucose-sensitive holographic sensors for monitoring bacterial growth. , 2004, Analytical chemistry.
[25] U. Ribel,et al. The Mechanism of Protraction of Insulin Detemir, a Long-Acting, Acylated Analog of Human Insulin , 2004, Pharmaceutical Research.
[26] Liang-Yin Chu,et al. Control of pore size and permeability of a glucose-responsive gating membrane for insulin delivery. , 2004, Journal of controlled release : official journal of the Controlled Release Society.
[27] J. Blyth,et al. Glucose‐sensitive holographic sensors , 2004, Journal of molecular recognition : JMR.
[28] S. Wild,et al. Global prevalence of diabetes: estimates for the year 2000 and projections for 2030. , 2004, Diabetes care.
[29] A. Wilkinson,et al. Crystallographic and solution studies of N-lithocholyl insulin: a new generation of prolonged-acting human insulins. , 2004, Biochemistry.
[30] Akira Matsumoto,et al. Glucose-responsive polymer gel bearing phenylborate derivative as a glucose-sensing moiety operating at the physiological pH. , 2004, Biomacromolecules.
[31] Paul V Braun,et al. Glucose-sensitive inverse opal hydrogels: analysis of optical diffraction response. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[32] B. Ziaie,et al. Novel swelling/shrinking behaviors of glucose-binding hydrogels and their potential use in a microfluidic insulin delivery system , 2004 .
[33] Akira Matsumoto,et al. Swelling and Shrinking Kinetics of Totally Synthetic, Glucose-Responsive Polymer Gel Bearing Phenylborate Derivative as a Glucose-Sensing Moiety , 2004 .
[34] Takashi Miyata,et al. Preparation of reversibly glucose-responsive hydrogels by covalent immobilization of lectin in polymer networks having pendant glucose , 2004, Journal of biomaterials science. Polymer edition.
[35] J. Watanabe,et al. Degradation of phospholipid polymer hydrogel by hydrogen peroxide aiming at insulin release device. , 2003, Biomaterials.
[36] Yuandong Gu,et al. A hydrogel-actuated environmentally sensitive microvalve for active flow control , 2003 .
[37] Kazunori Kataoka,et al. Simple and precise preparation of a porous gel for a colorimetric glucose sensor by a templating technique. , 2003, Angewandte Chemie.
[38] K. Kataoka,et al. Glucose-responsive polymer bearing a novel phenylborate derivative as a glucose-sensing moiety operating at physiological pH conditions. , 2003, Biomacromolecules.
[39] Paul V. Braun,et al. Tunable Inverse Opal Hydrogel pH Sensors , 2003 .
[40] Igor K Lednev,et al. High ionic strength glucose-sensing photonic crystal. , 2003, Analytical chemistry.
[41] Igor K Lednev,et al. Photonic crystal carbohydrate sensors: low ionic strength sugar sensing. , 2003, Journal of the American Chemical Society.
[42] Masayoshi Watanabe,et al. Template Synthesis and Optical Properties of Chameleonic Poly(N‐isopropylacrylamide) Gels Using Closest‐Packed Self‐Assembled Colloidal Silica Crystals , 2003 .
[43] Y. Bae,et al. A sulfonamide based glucose-responsive hydrogel with covalently immobilized glucose oxidase and catalase. , 2003, Journal of controlled release : official journal of the Controlled Release Society.
[44] S. Tanna,et al. Covalent coupling of concanavalin A to a Carbopol 934P and 941P carrier in glucose‐sensitive gels for delivery of insulin , 2002, The Journal of pharmacy and pharmacology.
[45] N. Murthy,et al. A novel strategy for encapsulation and release of proteins: hydrogels and microgels with acid-labile acetal cross-linkers. , 2002, Journal of the American Chemical Society.
[46] C. Pichot,et al. Functionalization of poly(N-ethylmethacrylamide) thermosensitive particles by phenylboronic acid , 2002 .
[47] M. Watanabe,et al. Polymer Gels that Memorize Structures of Mesoscopically Sized Templates. Dynamic and Optical Nature of Periodic Ordered Mesoporous Chemical Gels , 2002 .
[48] E. Opara,et al. Immunoisolation techniques for islet cell transplantation , 2002, Expert opinion on biological therapy.
[49] Kai Zhang,et al. Modulated insulin permeation across a glucose-sensitive polymeric composite membrane. , 2002, Journal of controlled release : official journal of the Controlled Release Society.
[50] G. Shulman,et al. Inclusion of low amounts of fructose with an intraduodenal glucose load markedly reduces postprandial hyperglycemia and hyperinsulinemia in the conscious dog. , 2002, Diabetes.
[51] T. Miyata,et al. Biomolecule-sensitive hydrogels. , 2002, Advanced drug delivery reviews.
[52] S. Tanna,et al. A Covalently Stabilised Glucose Responsive Gel Formulation with a Carbopol ® Carrier , 2002, Journal of drug targeting.
[53] D. Mooney,et al. Hydrogels for tissue engineering. , 2001, Chemical reviews.
[54] Y. Cohen,et al. Characterization of glucose-sensitive insulin release systems in simulated in vivo conditions. , 2000, Biomaterials.
[55] N A Peppas,et al. Dynamic behavior of glucose oxidase-containing microparticles of poly(ethylene glycol)-grafted cationic hydrogels in an environment of changing pH. , 2000, Biomaterials.
[56] N A Peppas,et al. Glucose-sensitivity of glucose oxidase-containing cationic copolymer hydrogels having poly(ethylene glycol) grafts. , 2000, Journal of Controlled Release.
[57] Francis J. Doyle,et al. Preparation and dynamic response of cationic copolymer hydrogels containing glucose oxidase , 2000 .
[58] G. Adams,et al. Insulin Delivery Governed by Covalently Modified Lectin‐Glycogen Gels Sensitive to Glucose , 1999, The Journal of pharmacy and pharmacology.
[59] Soon-Shiong. Treatment of type I diabetes using encapsulated islets. , 1999, Advanced drug delivery reviews.
[60] T. Okano,et al. Totally Synthetic Polymer Gels Responding to External Glucose Concentration: Their Preparation and Application to On−Off Regulation of Insulin Release , 1998 .
[61] N. Peppas,et al. Novel poly(ethylene glycol)-grafted, cationic hydrogels: Preparation, characterization and diffusive properties , 1998 .
[62] R. Holman,et al. UKPDS 26: sulphonylurea failure in non‐insulin‐dependent diabetic patients over six years , 1998, Diabetic medicine : a journal of the British Diabetic Association.
[63] M. Taylor,et al. Characterization of model solute and insulin delivery across covalently modified lectin-polysaccharide gels sensitive to glucose , 1998 .
[64] S. Asher,et al. Intelligent Polymerized Crystalline Colloidal Arrays: Novel Chemical Sensor Materials , 1998 .
[65] S. Asher,et al. Polymerized colloidal crystal hydrogel films as intelligent chemical sensing materials , 1997, Nature.
[66] Francis J. Doyle,et al. Dynamic Behavior of Glucose-Responsive Poly(methacrylic acid-g-ethylene glycol) Hydrogels , 1997 .
[67] Kinam Park,et al. Characterization of protein release through glucose-sensitive hydrogel membranes. , 1997, Biomaterials.
[68] Kinam Park,et al. Synthesis and characterization of sol–gel phase‐reversible hydrogels sensitive to glucose , 1996, Journal of molecular recognition : JMR.
[69] Kinam Park,et al. Characterization of Glucose Dependent Gel-Sol Phase Transition of the Polymeric Glucose-Concanavalin A Hydrogel System , 1996, Pharmaceutical Research.
[70] C. Lowe,et al. Holographic sensor for water in solvents. , 1996, Analytical chemistry.
[71] H Hoshino,et al. Glucose-sensing electrode coated with polymer complex gel containing phenylboronic Acid. , 1996, Analytical chemistry.
[72] T. Miyata,et al. Preparation of poly(2-glucosyloxyethyl methacrylate)-concanavalin A complex hydrogel and its glucose-sensitivity , 1996 .
[73] T. Okano,et al. Amine containing phenylboronic acid gel for glucose-responsive insulin release under physiological pH , 1995 .
[74] B. Ratner,et al. Glucose-sensitive membrane coated porous filters for control of hydraulic permeability and insulin delivery from a pressurized reservoir , 1995 .
[75] P. Lacy,et al. Treating diabetes with transplanted cells. , 1995, Scientific American.
[76] F. Doyle,et al. Control and modeling of drug delivery devices for the treatment of diabetes , 1995, Proceedings of 1995 American Control Conference - ACC'95.
[77] C. R. Kahn,et al. Insulin Action, Diabetogenes, and the Cause of Type II Diabetes , 1994, Diabetes.
[78] S. Genuth,et al. The effect of intensive treatment of diabetes on the development and progression of long-term complications in insulin-dependent diabetes mellitus. , 1993, The New England journal of medicine.
[79] T. Okano,et al. A novel drug delivery system utilizing a glucose responsive polymer complex between poly (vinyl alcohol) and poly (N-vinyl-2-pyrrolidone) with a phenylboronic acid moiety , 1992 .
[80] T. Okano,et al. A microcapsule self-regulating delivery system for insulin , 1990 .
[81] Yoshihiro Ito,et al. An insulin-releasing system that is responsive to glucose , 1989 .
[82] S. W. Kim,et al. A self-regulating insulin delivery system. II. In vivo characteristics of a synthetic glycosylated insulin , 1989 .
[83] N. L. Ricker,et al. Theoretical and experimental studies of glucose sensitive membranes , 1987 .
[84] Kazuhiko Ishihara,et al. Glucose‐responsive insulin release from polymer capsule1 , 1986 .
[85] Buddy D. Ratner,et al. Glucose sensitive membranes for controlled delivery of insulin: Insulin transport studies , 1985 .
[86] Isao Shinohara,et al. Glucose Induced Permeation Control of Insulin through a Complex Membrane Consisting of Immobilized Glucose Oxidase and a Poly(amine) , 1984 .
[87] Shao-Tang Sun,et al. Phase transitions in ionic gels , 1980 .
[88] A. Cerami,et al. A glucose-controlled insulin-delivery system: semisynthetic insulin bound to lectin. , 1979, Science.
[89] Toyoichi Tanaka. Phase transitions in gels and a single polymer , 1979 .
[90] Toyoichi Tanaka. Collapse of Gels and the Critical Endpoint , 1978 .
[91] S. Aronoff,et al. Complexation of D-glucose with borate , 1975 .
[92] N. Sharon,et al. Lectins: cell-agglutinating and sugar-specific proteins. , 1972, Science.
[93] John O. Edwards,et al. Polyol Complexes and Structure of the Benzeneboronate Ion , 1959 .
[94] Hans-Jörg Schneider,et al. A chemomechanical polymer that functions in blood plasma with high glucose selectivity , 2021 .
[95] K. Matyjaszewski,et al. Synthesis and biodegradation of nanogels as delivery carriers for carbohydrate drugs. , 2007, Biomacromolecules.
[96] K. Kataoka,et al. Preparation and optical properties of ordered arrays of glucose-responsible submicrogel particles trapped in inverse opal polystyrene , 2006 .
[97] K. Kataoka,et al. Design of phenylborate-based glucose responsive micro-gel valve system via photo-initiated polymerization , 2005 .
[98] F. Doyle,et al. Preparation and characterization of glucose-sensitive P(MAA-g-EG) hydrogels , 1997 .
[99] S Tanna,et al. The delivery of insulin from aqueous and non-aqueous reservoirs governed by a glucose sensitive gel membrane. , 1995, Journal of drug targeting.
[100] A S Hoffman,et al. Formation of poly(glucosyloxyethyl methacrylate)-concanavalin A complex and its glucose-sensitivity. , 1994, Journal of biomaterials science. Polymer edition.
[101] T. Okano,et al. Preparation and characterization of a glucose-responsive insulin-releasing polymer device. , 1994, Biomaterials.
[102] Teruo Okano,et al. Sensitive glucose-induced change of the lower critical solution temperature of poly [N,N-dimethylacrylamide-co-3-(acrylamido) phenyl-boronic acid] in physiological saline , 1994 .
[103] K. Dušek. Responsive Gels: Volume Transitions II , 1993 .
[104] T. Horbett,et al. Design of insulin delivery devices based on glucose sensitive membranes , 1992 .
[105] J. M. Harris,et al. Poly(Ethylene Glycol) Chemistry Biotechnical and Biomedical Applications , 1992 .
[106] S. W. Kim,et al. Self-regulated glycosylated insulin delivery , 1990 .
[107] S. W. Kim,et al. A self-regulated insulin delivery system , 1990 .