958
Views
10
CrossRef citations to date
0
Altmetric
Research Article

Immobilized laccase-based biosensor for the detection of disubstituted methyl and methoxy phenols – application of Box–Behnken design with response surface methodology for modeling and optimization of performance parameters

, &
Pages 1741-1752 | Received 08 Jun 2015, Accepted 16 Sep 2015, Published online: 19 Oct 2015

References

  • Abhijith KS, Kumar PV, Kumar MA, Thakur MS. 2007. Immobilised tyrosinase-based biosensor for the detection of tea polyphenols. Anal Bioanal Chem. 389:2227–2234.
  • Adamski J, Nowak P, Kochana J. 2010. Simple sensor for determination of phenol and its derivatives in water based on enzyme tyrosinase. Electrochim Acta. 55:2363–2367.
  • Azizi SN, Asemi N. 2012. Box-Behnken design for determining the optimum experimental condition of the fungicide (Vapam) sorption onto soil modified with perlite. J Environ Sci Health. B. 47:692–699.
  • Chawla S, Narang J, Pundir CS. 2010. An amperometric polyphenol biosensor based on polyvinyl chloride membrane. Anal Methods. 2:1106–1111.
  • Chawla S, Rawal R, Shabnam, Kuhad RC, Pundir CS. 2011. An amperometric polyphenol biosensor based on laccase immobilized on epoxy resin membrane. Anal Methods. 3:709–714.
  • Diaconu M, Litescu SC, Radu GL. 2010. Laccase-MWCNT-chitosan biosensor-a new tool for total polyphenolic content evaluation from in vitro cultivated plants. Sens Actuators B. 145:800–806.
  • Duran N, Rosa MA, D’Annibale A, Gianfreda L. 2002. Applications of laccases and tyrosinases (phenoloxidases) immobilized on different supports: a review. Enzyme Microb Tech. 31:907–931.
  • Eremia SA, Vasilescu I, Radoi A, Litescu SC, Radu GL. 2013. Disposable biosensor based on platinum nanoparticles-reduced graphene oxide-laccase biocomposite for the determination of total polyphenolic content. Talanta. 110:164–170.
  • Freire RS, Duran N, Kubota LT. 2001. Effects of fungal laccase immobilization procedures for the development of a biosensor for phenol compounds. Talanta 54: 681–686.
  • Freire RS, Duran N, Wang J, Kubota LT. 2002. Laccase-based screen printed electrode for amperometric detection of phenolic compounds. Anal Lett. 35:29–38.
  • Ghindilis AL, Gavrilova VP, Yaropolov AI. 1992. Laccase-based biosensor for determination of polyphenols: determination of catechols in tea. Biosens Bioelectron. 7:127–131.
  • Gianfreda L, Xu F, Bollag JM. 1999. Laccases: a useful group of oxidoreductive enzymes. Bioremed J. 3:1–25.
  • Girelli AM, Mattei E, Messina A, Papaleo D. 2007. Immobilization of mushroom tyrosinase on controlled pore glass: effect of chemical modification. Sens Actuators B. 125:48–54.
  • Gomes SASS, Rebelo MJF. 2003. A new laccase biosensor for polyphenol determination. Sensors. 3:166–175.
  • Karolien DW, Stijn DB, Sanaz P, Geert VS, Wouter H, Hendrik AH. 2012. Enzyme-gelatin electrochemical biosensors: scaling down. Biosensors. 2:101–113.
  • Kavlock RJ, Daston GP, De Rosa C, Fenner-Crisp P, Gray LE, Kaattari S, et al. 1996. Research needs for the risk assessment of health and environmental effects of endocrine disruptors: a report of the U.S. EPA-sponsored workshop. Environ Health Perspect. 104:715–740.
  • Khan GF, Wernet W. 1997. Design of enzyme electrodes for extended use and storage life. Anal Chem. 69:2682–2687.
  • Korkut S, Keskinler B, Erhan E. 2008. An amperometric biosensor based on multiwalled carbon nanotube-poly (pyrrole)-HRP nanobiocomposite film for determination of phenol derivatives. Talanta. 76:1147–1152.
  • Krizman M, Baricevic D, Prosek M. 2007. Determination of phenolic compounds in fennel by HPLC and HPLC-MS using a monolithic reversed-phase column. J Pharm Biomed Anal. 43:481–485.
  • Muna GW, Quaiserova-Mocko V, Swain GM. 2005. The analysis of chlorinated phenol solutions by capillary electrophoresis coupled with direct and indirect amperometric detection using a boron-doped diamond microelectrode. Electroanalysis. 17:1160–1170.
  • Nadifiyine S, Haddam M, Mandli J, Chadel S, Blanchard CC, Marty JL, Amine A. 2013. Amperometric biosensor based on tyrosinase immobilized on to a carbon black paste electrode for phenol determination in olive oil. Anal Lett. 46:2705–2726.
  • Narang J, Chawla S, Chauhan N, Dahiya M, Pundir CS. 2013. Construction of an amperometric polyphenol biosensor based on PVA membrane. Food measure. 7:22–28.
  • Padilla-Sanchez JA, Plaza-Bolanos P, Romero-Gonzalez R, Barco-Bonilla N, Martinez-Vidal JL, Garrido-Frenich A. 2011. Simultaneous analysis of chlorophenols, alkylphenols, nitrophenols and cresols in wastewater effluents, using solid phase extraction and further determination by gas chromatography-tandem mass spectrometry. Talanta. 85:2397–2404.
  • Park JS, Brown MT, Han T. 2012. Phenol toxicity to the aquatic macrophyte Lemna paucicostata. Aquat Toxicol. 106–107:182–188.
  • Portaccio M, Di Martino S, Maiuri P, Durante D, De Luca P, Lepore M, et al. 2006. Biosensors for phenolic compounds: the catechol as a substrate model. J Mol Catal B: Enzym. 41:97–102.
  • Pundir CS, Rawal R, Chawla S, Renuka, Kuhad RC. 2011. Development of an amperometric polyphenol biosensor based on fungal laccase immobilized on nitrocellulose membrane. Artif Cells Blood Substitues Biotechnol. 40:163–170.
  • Rekha K, Thakur MS, Karanth NG. 2000. Biosensors for the detection of organophosphorous pesticide. Crit Rev Biotechnol. 20: 213–235.
  • Renger G, Hanssum BM. 2009. Oxygen detection in biological systems. Photosynth Res. 102:487–498.
  • Sanchez-Avila J, Fernandez-Sanjuan M, Vicente J, Lacorte S. 2011. Development of a multi-residue method for the determination of organic micropollutants in water, sediment and mussels using gas chromatography-tandem mass spectrometry. J Chromatogr A. 1218:6799–6811.
  • Sarika C, Rekha K, Narasimha Murthy B. 2015. Studies on enhancing operational stability of a reusable laccase-based biosensor probe for detection of ortho-substituted phenolic derivatives. 3 Biotech. 5:1–14.
  • Sassolas A, Blum LJ, Leca-Bouvier BD. 2012. Immobilization strategies to develop enzymatic biosensors. Biotechnol Adv. 30:489–511.
  • Segovia-Martinez L, Moliner-Martinez Y, Campins-Falco P. 2010. Direct capillary liquid chromatography with electrochemical detection method for determination of phenols in water samples. J Chromatogr A. 1217:7926–7930.
  • Shimomura T, Itoh T, Sumiya T, Hanaoka TA, Mizukami F, Ono M. 2011. Amperometric detection of phenolic compounds with enzyme immobilized in mesoporous silica prepared by electrophoretic deposition. Sens Actuators B. 153:361–368.
  • Singh N, Srivastava G, Talat M, Raghubanshi H, Srivastava ON, Kayastha AM. 2014. Cicer α-galactosidase immobilization onto functionalized graphene nanosheets using response surface method and its applications. Food Chem. 142:430–438.
  • Soares A, Jonasson K, Terrazas E, Guieysse B, Mattiasson B. 2005. The ability of white-rot fungi to degrade the endocrine-disrupting compound nonylphenol. Appl Microbio Biotechnol. 66:719–725.
  • Solna R, Skladal P. 2005. Amperometric flow-injection determination of phenolic compounds using a biosensor with immobilized laccase, peroxidase and tyrosinase. Electroanalysis. 17:2137–2146.
  • Solomon EI, Sundaram UM, Machonkin TE. 1996. Multicopper oxidases and oxygenases. Chem Rev. 96:2563–2606.
  • Tanigawa T, Watabe Y, Kubo T, Hosoya K. 2011. Determination of bisphenol A with effective pretreatment medium using automated column-switching HPLC with fluorescence detection. J Sep Sci. 34:2840–2846.
  • Tembe S, Kubal BS, Karve M, D’Souza SF. 2008. Glutaraldehyde activated eggshell membrane for immobilization of tyrosinase from amorphophallus companulatus: application in construction of electrochemical biosensor for dopamine. Anal Chim Acta. 612:212–217.
  • Wu Y. 2009. Nano-TiO2/dihexadecylphosphate based electrochemical sensor for sensitive determination of pentachlorophenol. Sens Actuators B. 137:180–184.
  • Yagar H, Kocaturk S. 2014. Comparison of some biochemical properties of artichoke polyphenol oxidase entrapped in alginate-carrageenan and alginate gels. Artif Cells Nanomed Biotechnol. 42:268–273.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.