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Further evaluation of designed biosensor was made on commercially available cosmetic product with state of the art percent recovery value.
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The considerable advancements have been made on the successful electrochemical sensor and biosensor platforms based on nanomaterials for environmental applications.
Especially in the field of biofuel cells [ 49– 51] great progress has been made on the spatial arrangement of CDH on electrodes (Ortiz et al. submitted) [ 47– 49, 52, 53] and CDH-based biosensors [ 54– 58].
The biosensor array was made onto a glass substrate using a microfabrication process developed in house [21], each biosensor having a dimension of 2 mm×2 mm and the array having a footprint that is compatible to a standard 384-well microplate.
The preliminary determination of the effect of each plant extract on Panc-1 cells was made in an initial screen using a label-free PC biosensor-based assay.
Therefore, an attempt was made to apply this method of immobilization for the development of amperometric glutamate-sensitive biosensor with improved analytical characteristics using GlOx adsorbed on silicalite.
The heterogeneity on the biosensor surface is made quantitative by using a single number, the fractal dimension, Df.
An extension of the DNA biosensor has been made to include the detection of viral DNA.
Real-time monitoring of these modifications has been made possible with biosensors based on fluorescent proteins (FPs) and fluorescence resonance energy transfer (FRET), which can provide spatiotemporal information of PTMs with little perturbation to the cellular environment.
Summarizing all the results obtained, the conclusion can be made that the developed amperometric biosensor based on GlOx adsorbed on silicalite is a promising device for further successful application for glutamate analysis in real biological fluids.
After incubation, an assay for oxalic acid is made using a biosensor.
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