A self referencing platinum nanoparticle decorated enzyme-based microbiosensor for real time measurement of physiological glucose transport

Glucose is the central molecule in many biochemical pathways, and numerous approaches have been developed for fabricating micro biosensors designed to measure glucose concentration in/near cells and/or tissues. An inherent problem for microsensors used in physiological studies is a low signal-to-noi...

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Veröffentlicht in:Biosensors & bioelectronics 2011-01, Vol.26 (5), p.2237-2245
Hauptverfasser: McLamore, E.S., Shi, J., Jaroch, D., Claussen, J.C., Uchida, A., Jiang, Y., Zhang, W., Donkin, S.S., Banks, M.K., Buhman, K.K., Teegarden, D., Rickus, J.L., Porterfield, D.M.
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container_end_page 2245
container_issue 5
container_start_page 2237
container_title Biosensors & bioelectronics
container_volume 26
creator McLamore, E.S.
Shi, J.
Jaroch, D.
Claussen, J.C.
Uchida, A.
Jiang, Y.
Zhang, W.
Donkin, S.S.
Banks, M.K.
Buhman, K.K.
Teegarden, D.
Rickus, J.L.
Porterfield, D.M.
description Glucose is the central molecule in many biochemical pathways, and numerous approaches have been developed for fabricating micro biosensors designed to measure glucose concentration in/near cells and/or tissues. An inherent problem for microsensors used in physiological studies is a low signal-to-noise ratio, which is further complicated by concentration drift due to the metabolic activity of cells. A microsensor technique designed to filter extraneous electrical noise and provide direct quantification of active membrane transport is known as self-referencing. Self-referencing involves oscillation of a single microsensor via computer-controlled stepper motors within a stable gradient formed near cells/tissues (i.e., within the concentration boundary layer). The non-invasive technique provides direct measurement of trans-membrane (or trans-tissue) analyte flux. A glucose micro biosensor was fabricated using deposition of nanomaterials (platinum black, multiwalled carbon nanotubes, Nafion) and glucose oxidase on a platinum/iridium microelectrode. The highly sensitive/selective biosensor was used in the self-referencing modality for cell/tissue physiological transport studies. Detailed analysis of signal drift/noise filtering via phase sensitive detection (including a post-measurement analytical technique) are provided. Using this highly sensitive technique, physiological glucose uptake is demonstrated in a wide range of metabolic and pharmacological studies. Use of this technique is demonstrated for cancer cell physiology, bioenergetics, diabetes, and microbial biofilm physiology. This robust and versatile biosensor technique will provide much insight into biological transport in biomedical, environmental, and agricultural research applications.
doi_str_mv 10.1016/j.bios.2010.09.041
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source MEDLINE; Elsevier ScienceDirect Journals
subjects agricultural research
analytical methods
biochemical pathways
biofilm
Biological and medical sciences
Biological Transport, Active - physiology
Biosensing Techniques - instrumentation
Biosensor
Biosensors
Biotechnology
Carbon nanotubes
Cell Membrane - metabolism
cell physiology
Computer Systems
Conductometry - instrumentation
diabetes
Electrodes
energy metabolism
Enzymes, Immobilized - chemistry
Equipment Design
Equipment Failure Analysis
Fundamental and applied biological sciences. Psychology
glucose
Glucose - metabolism
Glucose flux
glucose oxidase
Glucose Oxidase - chemistry
iridium
Methods. Procedures. Technologies
Miniaturization
nanoparticles
Nanoparticles - chemistry
Nanoparticles - ultrastructure
Nanotechnology - instrumentation
physiological transport
Physiology
platinum
Platinum - chemistry
Self referencing
tissues
Various methods and equipments
title A self referencing platinum nanoparticle decorated enzyme-based microbiosensor for real time measurement of physiological glucose transport
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