• Title of article

    Immobilization of cholesterol oxidase in LbL films and detection of cholesterol using ac measurements

  • Author/Authors

    Moraes، نويسنده , , Marli L. and de Souza، نويسنده , , Nara C. and Hayasaka، نويسنده , , Caio O. and Ferreira، نويسنده , , Marystela and Rodrigues Filho، نويسنده , , Ubirajara P. and Riul Jr.، نويسنده , , Antonio and Zucolotto، نويسنده , , Valtencir and Oliveira Jr.، نويسنده , , Osvaldo N.، نويسنده ,

  • Issue Information
    روزنامه با شماره پیاپی سال 2009
  • Pages
    6
  • From page
    442
  • To page
    447
  • Abstract
    The preserved activity of immobilized biomolecules in layer-by-layer (LbL) films can be exploited in various applications, including biosensing. In this study, cholesterol oxidase (COX) layers were alternated with layers of poly(allylamine hydrochloride) (PAH) in LbL films whose morphology was investigated with atomic force microscopy (AFM). The adsorption kinetics of COX layers comprised two regimes, a fast, first-order kinetics process followed by a slow process fitted with a Johnson–Mehl–Avrami (JMA) function, with exponent ~ 2 characteristic of aggregates growing as disks. The concept based on the use of sensor arrays to increase sensitivity, widely employed in electronic tongues, was extended to biosensing with impedance spectroscopy measurements. Using three sensing units, made of LbL films of PAH/COX and PAH/PVS (polyvinyl sulfonic acid) and a bare gold interdigitated electrode, we were able to detect cholesterol in aqueous solutions down to the 10− 6 M level. This high sensitivity is attributed to the molecular-recognition interaction between COX and cholesterol, and opens the way for clinical tests to be made with low cost, fast experimental procedures.
  • Keywords
    Biosensor , eggPG , Layer-by-Layer , Cholesterol oxidase , Cholesterol , atomic force microscopy
  • Journal title
    Materials Science and Engineering C
  • Serial Year
    2009
  • Journal title
    Materials Science and Engineering C
  • Record number

    2099948