Biomimetic piezoelectric quartz crystal sensor with chloramphenicol-imprinted polymer sensing layer

被引:36
作者
Ebarvia, Benilda S. [1 ]
Ubando, Isaiah E. [1 ]
Sevilla, Fortunato B., III [2 ]
机构
[1] DOST Compound, Ind Technol Dev Inst, Taguig City, Philippines
[2] Univ Santo Tomas, Manila, Philippines
关键词
Chloramphenicol; Antibiotic; Quartz crystal sensor; Molecularly imprinted polymer; Precipitation polymerization; PERFORMANCE LIQUID-CHROMATOGRAPHY; CAPILLARY-ZONE-ELECTROPHORESIS; FLORFENICOL AMINE; GAS-CHROMATOGRAPHY; RESIDUES; THIAMPHENICOL; HONEY; MILK; PRECONCENTRATION; IMMUNOSENSOR;
D O I
10.1016/j.talanta.2015.08.001
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The measurement of banned antibiotic like chloramphenicol is significant for customer protection and safety. The presence of residual antibiotics in foods and food products of animal origin could pose as health hazards and affect food quality for global acceptance. In this study, the potential of a chloramphenicol sensor based on molecularly imprinted polymer (MIP) coupled with a piezoelectric quartz crystal was explored. The MIP was prepared by precipitation polymerization at 60 degrees C. Methacrylic acid was used as monomer, trimethylolpropane trimethacrylate (TRIM) as crosslinker, and chloramphenicol as the template. Template removal on the resulting polymer was done by extraction using methanol-acetic acid. Characterization of the MIP and NIP were conducted by spectroscopic and microscopic methods. These further supported the imprinting and rebinding process of chloramphenicol to the polymer matrix. The chloramphenicol sensor was devised by spin-coating onto one side of the 10 MHz AT-cut quartz crystal the MIP suspension in polyvinylchloride-tetrahydrofuran (6:2:1 w/w/v) solution. Optimization of sensor response was performed by varying the type of cross-linker, amount of MIP sensing layer, curing time, and pH. The sensor exhibited good sensitivity of about 73 Hz/log (conc., mu g mL(-1)) and good repeatability (rsd < 10%). A linear relationship (r(2)=0.9901) between frequency shift and chloramphenicol concentration in the range of 1 x 10(-6) up to 1 x 10(-1) mu g/mL was obtained. The sensor response was highly selective to chloramphenicol than with other compounds of similar chemical structures. Acceptable percent recovery was obtained for real sample analysis using the sensor. The proposed sensor could be a promising low cost and highly sensitive approach for residual chloramphenicol quantification in food products. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:1260 / 1265
页数:6
相关论文
共 36 条
[1]   Selective determination of chloramphenicol at trace level in milk samples by the electrode modified with molecularly imprinted polymer [J].
Alizadeh, Taher ;
Ganjali, Mohamad Reza ;
Zare, Mashaalah ;
Norouzi, Parviz .
FOOD CHEMISTRY, 2012, 130 (04) :1108-1114
[2]   Solid phase microextraction-Liquid chromatography (SPME-LC) determination of chloramphenicol in urine and environmental water samples [J].
Aresta, A. ;
Bianchi, D. ;
Calvano, C. D. ;
Zambonin, C. G. .
JOURNAL OF PHARMACEUTICAL AND BIOMEDICAL ANALYSIS, 2010, 53 (03) :440-444
[3]   Dispersive liquid-liquid microextraction followed by high-performance liquid chromatography as an efficient and sensitive technique for simultaneous determination of chloramphenicol and thiamphenicol in honey [J].
Chen, Huaixia ;
Chen, Hui ;
Ying, Jun ;
Huang, Jianlin ;
Liao, Lei .
ANALYTICA CHIMICA ACTA, 2009, 632 (01) :80-85
[4]   Simultaneous spectrophotometric-multivariate calibration determination of several components of ophthalmic solutions: phenylephrine, chloramphenicol, antipyrine, methylparaben and thimerosal [J].
Collado, MS ;
Mantovani, VE ;
Goicoechea, HC ;
Olivieri, AC .
TALANTA, 2000, 52 (05) :909-920
[5]   A surface plasmon resonance biosensor assay for the simultaneous determination of thiamphenicol, florefenicol, florefenicol amine and chloramphenicol residues in shrimps [J].
Dumont, V. ;
Huet, A. -C. ;
Traynor, I. ;
Elliott, C. ;
Delahaut, P. .
ANALYTICA CHIMICA ACTA, 2006, 567 (02) :179-183
[6]  
F.D.A, FOOD PROGR GUID CHEM
[7]   Determination of chloramphenicol in honey by liquid chromatography-tandem mass spectrometry [J].
Forti, AF ;
Campana, G ;
Simonella, A ;
Multari, M ;
Scortichini, G .
ANALYTICA CHIMICA ACTA, 2005, 529 (1-2) :257-263
[8]   Simultaneous determination of chloramphenicol and ketoprofen in meat and milk and chloramphenicol in egg, honey, and urine using liquid chromatography-mass spectrometry [J].
Hormazábal, V ;
Yndestad, M .
JOURNAL OF LIQUID CHROMATOGRAPHY & RELATED TECHNOLOGIES, 2001, 24 (16) :2477-2486
[9]   Measurement of chloramphenicol by capillary zone electrophoresis following end-column amperometric detection at a carbon fiber micro-disk array electrode [J].
Jin, WR ;
Ye, XY ;
Yu, DQ ;
Dong, Q .
JOURNAL OF CHROMATOGRAPHY B, 2000, 741 (02) :155-162
[10]   A piezoelectric immunosensor for chloramphenicol detection in food [J].
Karaseva, N. A. ;
Ermolaeva, T. N. .
TALANTA, 2012, 93 :44-48