4.8 Article

Sensitive electrochemical microbial biosensor for p-nitrophenylorganophosphates based on electrode modified with cell surface-displayed organophosphorus hydrolase and ordered mesopore carbons

Journal

BIOSENSORS & BIOELECTRONICS
Volume 60, Issue -, Pages 137-142

Publisher

ELSEVIER ADVANCED TECHNOLOGY
DOI: 10.1016/j.bios.2014.04.001

Keywords

Bacterial surface display; Organophosphorus hydrolase; p-nitrophenyl organophosphates; Ordered mesoporous carbons; Electrochemical microbial biosensor; Amperometric detection

Funding

  1. National Natural Science Foundation of China [91227116, 31200598, 31300663, 21275152]
  2. Hundred-Talent-Project, Chinese Academy of Sciences [KSCX2-YW-BR-7]

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A novel electrochemical microbial biosensor for the rapid monitoring of p-nitrophenyl-substituted organophosphates (OPs) compounds based on glass carbon electrode (GCE) modified with both ordered mesopore carbons (OMCs) and cell surface-expressed organophosphorus hydrolase (OPH) (OPH-bacteria/ OMCs/GCE) was described in this paper. The genetically engineered Escherichia coli strain surface displayed mutant OPH (55) with improved enzyme activity and favorable stability was constructed using a newly identified N-terminal of ice nucleation protein as an anchoring motif, which can be used directly without further time-consuming enzyme-extraction and purification, thereafter greatly improved the stability of the enzyme. Compared to OPH-bacteria modified GCE (OPH-bacteria/GCE), the OPH-bacteria/OMCs/GCE not only significantly enhanced the current response but also reduced the oxidation overpotential towards oxidizable p-nitrophenol (p-NP), which was the hydrolysate of p-nitrophenyl-substituted OPs. Under the optimized experimental conditions, at +0.84 V (vs. SCE), the current-time curve was performed with varying OPs concentration. The current response was linear with paraoxon concentration within 0.05-25 mu M. Similarly, linear range of 0.05-25 mu M was found for parathion, and 0.08-30 mu M for methyl parathion. The low limits of detection were evaluated to be 9.0 nM for paraoxon, 10 nM for parathion and 15 nM for methyl parathion (S/N=3). Thus, a highly specific, sensitive and rapid microbial biosensor was established, which holds great promise for on-site detection of trace p-nitrophenyl-substituted OPs. (C) 2014 Elsevier B.V. All rights reserved.

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