Multiplexed mycotoxins determination employing white light reflectance spectroscopy and silicon chips with silicon oxide areas of different thickness

被引:26
作者
Anastasiadis, Vasileios [1 ,2 ]
Koukouvinos, Georgios [1 ]
Petrou, Panagiota S. [1 ]
Economou, Anastasios [2 ]
Dekker, James [3 ]
Harjanne, Mikko [3 ]
Heimala, Paivi [3 ]
Goustouridis, Dimitris [4 ]
Raptis, Ioannis [4 ]
Kakabakos, Sotirios E. [1 ]
机构
[1] NCSR Demokritos, Immunoassays Immunosensors Lab, INRaSTES, GR-15310 Aghia Paraskevi, Greece
[2] Univ Athens, Dept Chem, Analyt Chem Lab, Panepistimiopolis 15771, Zografou, Greece
[3] VTT Tech Res Ctr Finland Ltd, FI-02150 Espoo, Finland
[4] ThetaMetrisis SA, Athens 12132, Greece
关键词
Multiplexed detection; Multi area reflectance spectroscopy; Aflatoxin B-1; Fumonisin B-1; Cereal samples; OPTICAL BIOSENSOR; IMMUNOSENSOR; SAMPLES; BLOOD; MILK;
D O I
10.1016/j.bios.2020.112035
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Biosensing through White Light Reflectance Spectroscopy (WLRS) is based on monitoring the shift of interference spectrum due to the binding reactions occurring on top of a thin SiO2 layer deposited on a silicon chip. Multi-analyte determinations were possible through scanning of a single sensor chip on which multiple bioreactive areas have been created. Nonetheless, the implementation of moving parts increased the instrumentation size and complexity and limited the potential for on-site determinations. Thus, in this work, a new approach, which is based on patterning the sensor surface to create areas with different SiO2 thickness, is developed and evaluated for multi-analyte determinations with the WLRS set-up. The areas of different thickness can be interrogated by a single reflection probe placed on a fixed position over the chip and the reflection spectrum recorded is de-convoluted to the spectra corresponding to each area allowing the simultaneous monitoring of the bioreactions taking place at each one of them. The combination of different areas thickness was optimized using chips with two areas for single analyte assays. The optimum chips were then used for the simultaneous determination of two mycotoxins, aflatoxin B-1 and fumonisin B-1. A competitive immunoassay format was followed employing immobilization of mycotoxin-protein conjugates onto the SiO2 of different thickness. It was found that the dual-analyte assays had identical analytical characteristics with the respective single-analyte ones. The detection limits achieved were 0.05 ng/mL for aflatoxin B-1 and 1.0 ng/mL for fumonisin B-1, with dynamic ranges extending up to 5.0 and 50 ng/mL, respectively. The sensor was also evaluated for the determination of the two mycotoxins in whole grain samples (wheat and maize). The extraction protocol was optimized and recoveries ranging from 85 to 115% have been determined. Due to lack of moving parts, the novel multi-analyte format is expected to considerably facilitate the built-up of a portable device for determination of analytes at the point-of-need.
引用
收藏
页数:8
相关论文
共 38 条
[1]   Sensitivity enhancement for mycotoxin determination by optical waveguide lightmode spectroscopy using gold nanoparticles of different size and origin [J].
Adanyi, Nora ;
Nagy, Adam Gyorgy ;
Takacs, Bettina ;
Szendro, Istvan ;
Szakacs, George ;
Szucs, Rozsa ;
Toth-Szeles, Eszter ;
Lagzi, Istvan ;
Weiser, Diana ;
Bodai, Viktoria ;
Satorhelyi, Peter ;
Erdelyi, Balazs .
FOOD CHEMISTRY, 2018, 267 :10-14
[2]   Highly sensitive label-free in vitro detection of aflatoxin B1 in an aptamer assay using optical planar waveguide operating as a polarization interferometer [J].
Al-Jawdah, Ali ;
Nabok, Alexei ;
Abu-Ali, Hisham ;
Catanante, Gaelle ;
Marty, Jean-Louis ;
Szekacs, Andras .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2019, 411 (29) :7717-7724
[3]   Mycotoxin detection [J].
Anfossi, Laura ;
Giovannoli, Cristina ;
Baggiani, Claudio .
CURRENT OPINION IN BIOTECHNOLOGY, 2016, 37 :120-126
[4]   Porous Silicon-Based Photonic Biosensors: Current Status and Emerging Applications [J].
Arshavsky-Graham, Sofia ;
Massad-Ivanir, Naama ;
Segal, Ester ;
Weiss, Sharon .
ANALYTICAL CHEMISTRY, 2019, 91 (01) :441-467
[5]   Masked mycotoxins: A review [J].
Berthiller, Franz ;
Crews, Colin ;
Dall'Asta, Chiara ;
De Saeger, Sarah ;
Haesaert, Geert ;
Karlovsky, Petr ;
Oswald, Isabelle P. ;
Seefelder, Walburga ;
Speijers, Gerrit ;
Stroka, Joerg .
MOLECULAR NUTRITION & FOOD RESEARCH, 2013, 57 (01) :165-186
[6]   Development of a new parallelized, optical biosensor platform for label-free detection of autoimmunity-related antibodies [J].
Bleher, Oliver ;
Schindler, Aline ;
Yin, Meng-Xin ;
Holmes, Andrew B. ;
Luppa, Peter B. ;
Gauglitz, Guenter ;
Proll, Guenther .
ANALYTICAL AND BIOANALYTICAL CHEMISTRY, 2014, 406 (14) :3305-3314
[7]   Recent advances in mycotoxins detection [J].
Chauhan, Ruchika ;
Singh, Jay ;
Sachdev, Tushar ;
Basu, T. ;
Malhotra, B. D. .
BIOSENSORS & BIOELECTRONICS, 2016, 81 :532-545
[8]   Optical biosensors based on refractometric sensing schemes: A review [J].
Chen, Yangyang ;
Liu, Jinchuan ;
Yang, Zhenchuan ;
Wilkinson, James S. ;
Zhou, Xiaohong .
BIOSENSORS & BIOELECTRONICS, 2019, 144
[9]   Progress on nanostructured electrochemical sensors and their recognition elements for detection of mycotoxins: A review [J].
Goud, K. Yugender ;
Kalisa, Suresh Kumar ;
Kumar, Vanish ;
Tsang, Yiu Fai ;
Lee, S. E. ;
Gobi, K. Vengatajalabathy ;
Kim, Ki-Hyun .
BIOSENSORS & BIOELECTRONICS, 2018, 121 :205-222
[10]   Multiplex surface plasmon resonance biosensing and its transferability towards imaging nanoplasmonics for detection of mycotoxins in barley [J].
Joshi, Sweccha ;
Segarra-Fas, Anna ;
Peters, Jeroen ;
Zuilhof, Han ;
van Beek, Teris A. ;
Nielen, Michel W. F. .
ANALYST, 2016, 141 (04) :1307-1318