A Two-Mediator System Based on a Nanocomposite of Redox-Active Polymer Poly(thionine) and SWCNT as an Effective Electron Carrier for Eukaryotic Microorganisms in Biosensor Analyzers

Author:

Medvedeva Anastasia S.1,Dyakova Elena I.1,Kuznetsova Lyubov S.1,Mironov Vladislav G.1,Gurkin George K.1,Rogova Tatiana V.1,Kharkova Anna S.1ORCID,Melnikov Pavel V.2ORCID,Naumova Alina O.2ORCID,Butusov Denis N.3ORCID,Arlyapov Vyacheslav A.1ORCID

Affiliation:

1. Research Center “BioChemTech”, Tula State University, 92 Lenin Avenue, 300012 Tula, Russia

2. M. V. Lomonosov Institute of Fine Chemical Technologies, MIREA—Russian Technological University, 119571 Moscow, Russia

3. Computer-Aided Design Department, Saint Petersburg Electrotechnical University “LETI”, 197022 Saint Petersburg, Russia

Abstract

Electropolymerized thionine was used as a redox-active polymer to create a two-mediated microbial biosensor for determining biochemical oxygen demand (BOD). The electrochemical characteristics of the conducting system were studied by cyclic voltammetry and electrochemical impedance spectroscopy. It has been shown that the most promising in terms of the rate of interaction with the yeast B. adeninivorans is the system based on poly(thionine), single-walled carbon nanotubes (SWCNT), and neutral red (kint = 0.071 dm3/(g·s)). The biosensor based on this system is characterized by high sensitivity (the lower limit of determined BOD concentrations is 0.4 mgO2/dm3). Sample analysis by means of the developed analytical system showed that the results of the standard dilution method and those using the biosensor differed insignificantly. Thus, for the first time, the fundamental possibility of effectively using nanocomposite materials based on SWCNT and the redox-active polymer poly(thionine) as one of the components of two-mediator systems for electron transfer from yeast microorganisms to the electrode has been shown. It opens up prospects for creating stable and highly sensitive electrochemical systems based on eukaryotes.

Funder

RSF

government of the Tula region

Publisher

MDPI AG

Subject

Polymers and Plastics,General Chemistry

Reference69 articles.

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