Markas A. T. GilmartinJohn P. Hart
Amperometry in stirred solution has been used for the systematic evaluation of modified screen-printed carbon electrodes (SPCEs) with a view to developing a reagentless biosensor for uric acid. The developed system consists of a base cobalt phthalocyanine (CoPC) electrode tailored to the electrocatalytic oxidation of H2O2 by means of a cellulose acetate (CA)-uricase bilayer. Uricase was immobilized by drop-coating the enzyme onto the CA membrane covering the CoPC-SPCE. The device exploits the near-universal H2O2-generating propensity of oxidases, the permselectivity of the CA film towards H2O2 and the electrocatalytic oxidation of this product at the CoPC-SPCE. The electrochemical oxidation of the resulting Co+ species was used as the analytical signal, facilitating the application of a greatly reduced operating potential when compared with that required for direct oxidation of H2O2 at unmodified electrodes. The time required to achieve 95% of the steady-state current (t95i(ss)) was 44 s [relative standard deviation = 7.5% (n = 10)]. Amperometric calibrations were linear over the range from 13 x 10(-6) to 1 x 10(-3) mol dm-3, with the former representing the limit of detection. The CA membrane extended the linear range of the biosensor by over two orders of magnitude, when apparent Michaelis-Menten constants (Km') of immobilized and free enzymes are compared. This suggests that the process is diffusion-controlled and not governed by the kinetics of the enzyme. The precision of electrode fabrication was determined by cyclic voltammetry to be 4.9% (n = 6).(ABSTRACT TRUNCATED AT 250 WORDS)
Dinakaran ThirumalaiSeonghye KimSuhkmann KimSeung‐Cheol ChangSuhkmann KimSeung-Cheol Chang
Thanawath TuntiwongmeteeSuntisak KhumngernNatha NontipichetSupapich RomportongPanote ThavarungkulProespichaya KanatharanaApon Numnuam
Dinakaran Thirumalai (9629346)Seonghye Kim (9629349)Suhkmann Kim (294158)Seung-Cheol Chang (2684548)
John P. HartA.K. AbassDavid C. CowellAlfred E. Chappell
Dian Siska Rahma FatonahDeden SaprudinDyah IswantiniNovik Nurhidayat