By Paul R. Mathewson and John W. Finley (Eds.)
content material: Catalysis and long-range electron move via quinoproteins / Victor L. Davidson --
Microbiosensors for foodstuff research / Isao Karube and Masayasu Suzuki --
Biosensors for nutrition research / A.A. Suleiman and G.G. Guilbault --
Metalloporphyrin-coated electrodes for detection of 2,4-D / Namal Priyantha and Marianne Tambalo --
Intact chemoreceptor-based biosensors : antennular receptrodes / R. Michael Buch --
Immunoelectrodes for the detection of micro organism / Judith Rishpon, Yigal Gezundhajt, Lior Soussan, Ilana Rosen-Margalit, and Eran Hadas --
Drug detection utilizing the circulate immunosensor / Frances S. Ligler, Anne W. Kusterbeck, Robert A. Ogert, and Gregory A. Wemhoff --
A conductive polymer-based immunosensor for the research of pesticide residues / Robert G. Sandberg, Lisa J. Van Houten, Jerome L. Schwartz, Robert P. Bigliano, Stephen M. Dallas, John C. Silvia, Michael A. Cabelli, and V. Narayanswamy --
program of capacitive affinity biosensors : HIV antibody and glucose detection / Herbert S. Bresler, Michael J. Lenkevich, James F. Murdock, Jr., Arnold L. Newman, and Richard O. Roblin --
Characterization of fluorescent dyes for optical immunosensors in accordance with fluorescence strength move / Ai-Ping Wei, James N. Herron, and Douglas A. Christensen --
Concanavalin A and polysaccharide on gold surfaces : learn utilizing floor plasmon resonance innovations / R.F. DeBono, U.J. Krull, and Gh. Rounaghi --
Noninvasive choice of moisture and oil content material of wheat-flour cookies : near-infrared spectroscopy within the wavelength diversity 700-1100 nm / R.M. Ozanich, Jr., M.L. Schrattenholzer, and J.B. Callis --
Fiber-optic biosensors in keeping with overall internal-reflection fluorescence / K.R. Rogers, N.A. Anis, J.J. Valdes, and M.E. Eldefrawi --
wishes for biosensors in space-biology examine / Sjoerd L. Bonting --
hiking in study and improvement / Bego Gerber.
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Additional resources for Biosensor Design and Application
Potentiometric enzyme electrodes for glutamate assay using glutamate decarboxylase and glutamate dehydrogenase have been reported, however, these proved to be unstable. A n amperometric electrode based on immobilized L-glutamate oxidase was also reported (10), but this electrode suffered from interferences by L-glutamine, L-aspartate and L asparagine. Our enzyme electrode is based on the immobilization of L-glutamate oxidase on pre-activated Immobilon-AV Affinity membranes. ; ACS Symposium Series; American Chemical Society: Washington, DC, 1992.
Ch003 4 + H 0 2 2 Oxygen or hydrogen peroxide may be monitored amperometrically, and the current change is directly proportional to glutamate concentration. -cut-off membrane) was inserted between the electrode and the enzyme membrane. Chemical amplification of the response was achieved by co-immobilizing L-glutamate dehydrogenase which catalyzes the following reaction: glutamate dehydrogenase L-glutamate + NAD(P) + H 0 4 2 α-ketoglutarate + N H 4 * NAD (Ρ) Η + Ammonium chloride and N A D ( P ) H were added to the buffer solution to drive the reaction towards production of more L-glutamate.
Symp. 1988,17,419-427. 7. IEEE Trans. on BME. 1974,BME-21,485. 8. Chem. 1980,52,1935. 9. ;Karube,I. 1989,16,55-65. 1989, 22, 309-322. Acta. 1988, 215,301-305. 1988, 21,1785-1800. Chem. 1988,60,1078-1080. Lett. 1989,22, 2915-2927. ; ACS Symposium Series; American Chemical Society: Washington, DC, 1992. ch002 2. ; Karube,I. Electroanalysis. 1989,1,305-309. Acta. 1990,229,197-203. Anal. 1986, 19,1973-1986. Sci. 1990, 613, 396-400. Digest of Transducers'91;IEEE:New York, 1991; pp 381-384. Acta. 1989, 218,137- 142.
Biosensor Design and Application by Paul R. Mathewson and John W. Finley (Eds.)