Binding protein as biosensors

Chemistry: analytical and immunological testing – Heterocyclic carbon compound – Hetero-o

Reexamination Certificate

Rate now

  [ 0.00 ] – not rated yet Voters 0   Comments 0

Details

C438S086000, C438S164000, C438S172000, C435S007200, C435S014000, C435S287100, C435S817000

Reexamination Certificate

active

06855556

ABSTRACT:
The invention is directed to compositions of mutated binding proteins containing reporter groups, analyte biosensor devices derived there from, and their use as analyte biosensor both in vitro and in vivo.

REFERENCES:
patent: 4703756 (1987-11-01), Gough et al.
patent: 4704029 (1987-11-01), Van Heuvelen
patent: 5001054 (1991-03-01), Wagner
patent: 5165407 (1992-11-01), Wilson et al.
patent: 5200334 (1993-04-01), Dunn et al.
patent: 5292801 (1994-03-01), Avnir et al.
patent: 5300564 (1994-04-01), Avnir et al.
patent: 5342789 (1994-08-01), Chick et al.
patent: 5445920 (1995-08-01), Saito
patent: 5501836 (1996-03-01), Myerson
patent: 5517313 (1996-05-01), Colvin, Jr.
patent: 5577137 (1996-11-01), Groger et al.
patent: 5650311 (1997-07-01), Avnir et al.
patent: 5817493 (1998-10-01), Reetz et al.
patent: 5824526 (1998-10-01), Avnir et al.
patent: 5894351 (1999-04-01), Colvin, Jr.
patent: 5910661 (1999-06-01), Colvin, Jr.
patent: 6016689 (2000-01-01), Bright et al.
patent: 6080402 (2000-06-01), Reetz et al.
patent: 6197534 (2001-03-01), Lakowicz et al.
patent: 6277627 (2001-08-01), Hellinga
patent: 6288214 (2001-09-01), Hook et al.
patent: 6403337 (2002-06-01), Bailey et al.
patent: 6432723 (2002-08-01), Plaxco et al.
patent: 6521446 (2003-02-01), Hellinga
patent: 20020004217 (2002-01-01), Hellinga
patent: 20030104595 (2003-06-01), Kratzch et al.
patent: 20030130167 (2003-07-01), Pitner et al.
patent: 20030153026 (2003-08-01), Alarcon et al.
patent: 0 775 669 (1996-11-01), None
patent: WO 0059370 (2000-10-01), None
Baird et al., Current and Emerging Commerical Optical Biosensors, J. Mol. Recognit. 2001; 14:261-268.
Bhatia et al., Optical Fiber Long-Period Grating Sensors, Optics Letters, vol. 21, No. 9, May 1, 1996.
Gilardi, et al., Engineering the Maltose Binding Protein for Reagentless Fluorescence Sensing, Anal. Chem., 1994, 66, 3840-3847.
Jones, et al., Bioremediation Monitoring Using Optical Fiber Long Period Grating (LPG)-Based Sensors, NFS Manufacturing Conference, Vancouver, Jan., 2000.
Marvin, et al., Engineering Biosensors by Introducing Fluorescent Allosteric Signal Transducers: Construction of a Novel Glucose Sensor, J. Am. Chem. Soc. 1998, 120, pp. 7-11.
Marvin et al., The Rational Design Of Allosteric Interactions In A Monomeric Protein And Its Applications To The Construction Of Biosensors, Proc. Natl. Acad. Sci. USA, vol. 99, pp. 436-4371, Apr. 1997 Biochemistry.
Mowbray, et al., Structure of the Periplasmic Glucose/Galactose Receptor of Salmonella Typhimurium, Receptor, 1990, I, pp. 41-54.
Pisarchick et al., Binding of A Monoclonal Antibody and its Fab Fragment to Supported Phospholipid Monolayers Measured By Total Internal Reflection Fluorescence Microscopy, Biophys. J., Biophysical Society, vol. 58, Nov. 1990, pp. 1235-1249.
Salins et al., Reagentless Optical Detection Of Glucose Using Genetically Engineered Galactose/Glucose Binding Protein, Abstracts of Papers of the Americal Chemical Society, 219: 162-BIOL, Part I Mar. 26, 2000.
Salins et al., Reagentless Optical Detection Of Glucose Using Genetically Engineered Galactose/Glucose Binding Protein, Biochemistry 39 (6): 162 Feb. 15, 2000.
Tolosa, et al., Glucose Sensor for Low-Cost Lifetime-Based Sensing Using A Genetically Engineered Protein, Analytical Biochemistry 267, pp. 114-120 (1999).
Tolosa, et al., Optical Biosensors Based On Genetically-EngineeredE. coliPeriplasmic Binding Proteins, Biophys. J. 2000 (Jan.) p. 416A.
Topoglidis, et al., Protein Adsorption on Nanocrystalline TiO2 Films: An Immobilization Strategy for Bioanalytical Devices, Anal. Chem. 1998, 70, pp. 5111-5113.
O'Sullivan, et al., Commercial Quartz Crystal Microbalances—Theory and Applications, Biosensors & Bioelectronics 14 (1999) pp. 663-670.
Turcatti, et al., Probing the Structure and Function of the Tachykinin Neurokinin-2 Receptor through Biosenthetic Incorporation of Fluorescent Amino Acids at Specific Sites, The Journal of Biological Chemistry, vol. 271, No. 33, Isuse of Aug. 16, pp. 19991-19998, 1996.
Vyas, et al., Sugar and Signal-Transducer Binding Sites of theEscherichia coliGalactose Chemoreceptor Protein, Science, vol. 242 pp. 1290-1295 (Dec., 1998).
Avnir, et al., Encapsulation of Organic Molecules and Enzymes In Sol-Gel Glasses, A Review of Novel Photoactive, Optical, Sensing, and Bioactive Materials, ACS Symposium Series 1992, 499, p. 384-404.
Avnir, et al., Enzymes and Ohter Proteins Entrapped in Sol-Gel Materials, Chem. Mater. 1994, 6, p. 1605-1614.
Baker, et al., Effects of Poly (theylene glycol) Doping on the Behavior of Pyrene, Rhodamine 6G, and Acrylodan-Labeled Bovine Serum Albumin Sequestered within Tetramethylorthosilane-Derived Sol-Gel-Process Composites, Journal of Sol-Gel Science and Tech. 11, p 43-54 (1998).
Beach, et al., Subminiature Implantable Potentiostat and Modified Commercial Telemetry Device for Remote Glucose Monitoring, IEEE Transactions on Instrumentation and Measurement 1999, 48, p. 1239-1245.
Braun, et al., Biochemically Active Sol-Gel Glasses: The Trapping of Enzymes, Materials Letters, vol. 10, No. 1,2, (1990) p. 1-5.
Brennan, et al., Preparation and Entrapment of Fluorescently Labeled Proteins for the Development of Reagentless Optical Biosensors, Journal of Fluorescence, vol. 9, No. 4 (1999) p. 295-312.
Dave, et al., Encapsulation of Proteins in Bulk and Thin Film Sol-Gel Matrices, Journal of Sol-Gel Science and Technology 8 (1997) p. 629-634.
Flora, et al., Comparison of Formats For The Development of Fiber-Optic Biosensors Utilizing Sol-Gel Derived Materials Entrapping Fluorescently-Labelled Protein, Analyst 124 ( 1999) p. 1455-1462.
Flora, et al., The Effect Of Preparation and Aging Conditions On The Internal Environment Of Sol-Gel Derived Materials As Probed by 7-Azaindole and Pyranine Fluorescence, Can. J. Chem. 77 (1999) p. 1617-1625.
Flora, et al., Effect of Matrix Aging on the Behavior of Human Serum Albumin Entrapped in a Tetraethyl Orthosilicate-Derived Glass, Chem. Mater. 13 (2001) p. 4170-4179.
Flora, et al. Fluorometric Detection of Ca2+ Based on an Induced Change in the Conformation of Sol-Gel Entrapped Parvalbumin, Anal. Chem. 70 (1998) p. 4504-4513.
Gerritsen, et al., Biocompatibility Evaluation of Sol-Gel Coatings For Subcutaneously Implantable Glucose Sensors, Biomaterials 21 (2000) p. 71-78.
Gill, et al., Encapsulation of Biologicals Within Silocate, Siloxane, and Hybrid Sol-Gel Polymers: An Effecient and Generic Approach, J. Am. Chem. Soc. 120 (1998) p. 8587-8598.
Gill, et al., Novel Sol-Gel Matrices for the Immobiliation of Enzymes, Annals New York Academy of Sciences 799 (1996) p. 697-700.
Gowda, et al., Development of an Implantable Skin Port Sensor For Use As An In Vitro Optical Glucose Sensing Platform, Optical Diagnostics and Sensing of Biological Fluids and Glucose and Cholesterol Monitoring, Proc. SPIE vol. 4263 (2001) p. 11-19.
Narang, et al., Glucose Biosensor Based on a Sol-Gel-Derived Platform, Anal. Chem. 66 (1994) p. 3139-3144.
O'Neal, et al., Implantable Biosensors: Analysis of Fluorescent Light Propagation Through Skin, Optical Diagnostics and Sensing of Biological Fluids and Glucose and Cholesterol Monitoring, Proc. of SPIE vol. 4263 (1002) p. 20-24.
Shtelzer, et al., An Optical Biosensor Based Upon Glucose Oxidase Immobilized In Sol-Gel Silicate Matrix, Biotechnol. Appl. Biochem 19 (1994) p. 293-305.
Tsionsky, et al., Organically Modified Sol-Gel Sensors, Analytical Chemistry vol. 67, No. 1 (1995) p. 22-30.
Zheng, et al., Improving the Performance of a Sol-Gel-Entrapped Metal-Binding Protein by Maximizing Protein Thermal Stability Before Entrapment, Chem. Mater. 10 (1998) p. 3974-3983.
Zheng, et al., Measurement of Fluorescence from Typtophan To Probe The Environment and Reaction Kinetics Within Protein-Doped Sol-Gel-Derived Blass Monoliths, Anal. Chem. 69 (1997) p. 3940-3949.
Zheng, et al., Measurement of Intrinsic Fluorescence To Probe The Conformational Flexibility and Thermodynamic Stability of a Single Tryptophan Protein Entrapped In A Sol-Gel Derived Blass Matrix, Analyst. vol. 123 (1998) p. 1735-1744.
Zusman, et al., Doped Sol-Gel Glasses A

LandOfFree

Say what you really think

Search LandOfFree.com for the USA inventors and patents. Rate them and share your experience with other people.

Rating

Binding protein as biosensors does not yet have a rating. At this time, there are no reviews or comments for this patent.

If you have personal experience with Binding protein as biosensors, we encourage you to share that experience with our LandOfFree.com community. Your opinion is very important and Binding protein as biosensors will most certainly appreciate the feedback.

Rate now

     

Profile ID: LFUS-PAI-O-3467121

  Search
All data on this website is collected from public sources. Our data reflects the most accurate information available at the time of publication.