| Literature DB >> 22163704 |
Nirton C S Vieira1, Alessandra Figueiredo, Alvaro A A de Queiroz, Valtencir Zucolotto, Francisco E G Guimarães.
Abstract
Separative extended gate field effect transistor (SEGFET) type devices have been used as an ion sensor or biosensor as an alternative to traditional ion sensitive field effect transistors (ISFETs) due to their robustness, ease of fabrication, low cost and possibility of FET isolation from the chemical environment. The layer-by-layer technique allows the combination of different materials with suitable properties for enzyme immobilization on simple platforms such as the extended gate of SEGFET devices enabling the fabrication of biosensors. Here, glucose biosensors based on dendrimers and metallophthalocyanines (MPcs) in the form of layer-by-layer (LbL) films, assembled on indium tin oxide (ITO) as separative extended gate material, has been produced. NH(3)(+) groups in the dendrimer allow electrostatic interactions or covalent bonds with the enzyme (glucose oxidase). Relevant parameters such as optimum pH, buffer concentration and presence of serum bovine albumin (BSA) in the immobilization process were analyzed. The relationship between the output voltage and glucose concentration shows that upon detection of a specific analyte, the sub-products of the enzymatic reaction change the pH locally, affecting the output signal of the FET transducer. In addition, dendritic layers offer a nanoporous environment, which may be permeable to H(+) ions, improving the sensibility as modified electrodes for glucose biosensing.Entities:
Keywords: enzyme immobilization; field effect transistor; glucose biosensor; layer by layer
Mesh:
Substances:
Year: 2011 PMID: 22163704 PMCID: PMC3231248 DOI: 10.3390/s111009442
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1.Schematic illustration of the FET-based biosensor measurement system showing the connection diagram of the instrumentation amplifier AD620 used as unity gain buffer.
Figure 2.Response of PPI/NiTsPc-GOx FET-based biosensor with (black line) and without (red line) the presence of BSA in the process of enzyme immobilization to detect 0.5 mM of glucose. Measurement conditions: buffer solution 10 mM, pH 7.5.
Figure 3.Analytical curve of the PPI/NiTsPc-GOx FET-based biosensor. Measurement conditions: buffer solution 10 mM, pH 7.5
Figure 4.Influence of the buffer concentration (a) and effect of pH value on the PPI/NiTsPc-GOx FET-based glucose biosensor response (b).
Figure 5.PPI/NiTsPc-GOx FET-based glucose biosensor response after successive immersions in buffer and in buffer solutions containing 0.5 mM of glucose (a) and lifetime of the biosensor stored in pH 7.5 buffer solution at 4 °C (b).