Development of a common biosensor format for an enzyme based biosensor array to monitor fruit quality.
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David C Cullen | D. Cullen | S. Rughooputh | S. White | Shobha Jawaheer | S F White | S D D V Rughooputh | S. Jawaheer
[1] K. Kirtikara,et al. Dual electrode signal-subtracted biosensor for simultaneous flow injection determination of sucrose and glucose , 1999 .
[2] E. Dinçkaya,et al. A new enzyme electrode based on ascorbate oxidase immobilized in gelatin for specific determination of l-ascorbic acid. , 1999, Talanta.
[3] M. Boujtita,et al. Proposed model for shelf-life prediction of stabilised commercial enzyme-based systems and biosensors , 1999 .
[4] R. Schmid,et al. Biosensors for food analysis , 1990 .
[5] G. Schwedt,et al. Immobilized enzymes as tools in food analysis , 1994, Zeitschrift fur Lebensmittel-Untersuchung und -Forschung.
[6] Rajiv Kumar,et al. Changes in sugars, organic acids, amino acids, lipid constituents and aroma characteristics of ripening mango (Mangifera indica L) fruit , 1989 .
[7] P. A. Roelofsen. The plant cell-wall , 1959 .
[8] D Schomburg,et al. Crystal structure of glucose oxidase from Aspergillus niger refined at 2.3 A resolution. , 1993, Journal of molecular biology.
[9] R. Paull. Pineapple and papaya , 1993 .
[10] J. Anzai,et al. Layer-by-layer construction of enzyme multilayers on an electrode for the preparation of glucose and lactate sensors: elimination of ascorbate interference by means of an ascorbate oxidase multilayer. , 1998, Analytical chemistry.
[11] G. Tucker,et al. Biochemistry of Fruit Ripening , 1993, Springer Netherlands.
[12] R. Wills,et al. Changes in physiology, composition and sensory characteristics of Australian papaya during ripening , 1995 .
[13] C. Karahadian,et al. Evaluation of Physical, Chemical, and Sensory Properties of Pawpaw Fruit (Asimina triloba) as Indicators of Ripeness , 1994 .
[14] F. Scheller,et al. Comparison of two enzyme sequences for a novel L-malate biosensor , 1997 .
[15] F. A. Ahmed,et al. Biochemical changes in some fruits at different ripening stages , 1989 .
[16] Björn Persson,et al. Selective detection in flow analysis based on the combination of immobilized enzymes and chemically modified electrodes , 1991 .
[17] G. Vinci,et al. Ascorbic acid in exotic fruits : a liquid chromatographic investigation , 1995 .
[18] J. L. Lima Filho,et al. Ascorbic acid biosensor using ascorbate oxidase immobilized on alkylamine glass beads , 1992, Applied biochemistry and biotechnology.
[19] Ibtisam E. Tothill,et al. Catalytic Materials, Membranes, and Fabrication Technologies Suitable for the Construction of Amperometric Biosensors , 1995 .
[20] N. Murr,et al. Biosensor for determination of glucose and sucrose in fruit juices by flow injection analysis , 2000, Applied biochemistry and biotechnology.
[21] T. Gibson,et al. Biosensors : the stabilité problem , 1999 .
[22] I. Alli,et al. Changes in chemical composition of the kew cultivar of pineapple fruit during development , 1987 .
[23] T. Goodwin,et al. Introduction to plant biochemistry , 1972 .
[24] A. Turner,et al. Investigations of platinized and rhodinized carbon electrodes for use in glucose sensors , 1994 .
[25] E. Domínguez,et al. Amperometric flow-injection determination of sucrose with a mediated tri-enzyme electrode based on sucrose phosphorylase and electrocatalytic oxidation of NADH. , 2001, Biosensors & bioelectronics.
[26] S. Dong,et al. ELECTROCATALYTIC OXIDATION OF REDUCED NICOTINAMIDE COENZYMES AT METHYLENE GREEN-MODIFIED ELECTRODES AND FABRICATION OF AMPEROMETRIC ALCOHOL BIOSENSORS , 1994 .
[27] F. Mizutani,et al. Glucose sensor based on carbon paste electrode incorporating poly(ethylene glycol)-modified glucose oxidase and various mediators , 1995 .
[28] Norbert Hampp,et al. Sandwich enzyme membranes for amperometric multi-biosensor applications: improvement of linearity and reduction of chemical cross-talk , 1995 .