| Literature DB >> 29036884 |
Yan Man1,2,3, Gang Liang4,5,6, An Li7,8,9, Ligang Pan10,11,12.
Abstract
Mycotoxins are one of the main factors impacting food safety. Mycotoxin contamination has threatened the health of humans and animals. Conventional methods for the detection of mycotoxins are gas chromatography (GC) or liquid chromatography (LC) coupled with mass spectrometry (MS), or enzyme-linked immunosorbent assay (ELISA). However, all these methods are time-consuming, require large-scale instruments and skilled technicians, and consume large amounts of hazardous regents and solvents. Interestingly, a microchip requires less sample consumption and short analysis time, and can realize the integration, miniaturization, and high-throughput detection of the samples. Hence, the application of a microchip for the detection of mycotoxins can make up for the deficiency of the conventional detection methods. This review focuses on the application of a microchip to detect mycotoxins in foods. The toxicities of mycotoxins and the materials of the microchip are firstly summarized in turn. Then the application of a microchip that integrates various kinds of detection methods (optical, electrochemical, photo-electrochemical, and label-free detection) to detect mycotoxins is reviewed in detail. Finally, challenges and future research directions in the development of a microchip to detect mycotoxins are previewed.Entities:
Keywords: microarray; microchip; microfluidic; mycotoxin
Mesh:
Substances:
Year: 2017 PMID: 29036884 PMCID: PMC5666371 DOI: 10.3390/toxins9100324
Source DB: PubMed Journal: Toxins (Basel) ISSN: 2072-6651 Impact factor: 4.546
The representative mycotoxins and their toxicities.
| Mycotoxins | Abbreviation | Toxicities | |
|---|---|---|---|
| AFs | Aflatoxin B1 | AFB1 | AFs play an important role in developing countries; they have acute toxicity and can lead to cancer, immunologic suppression, and nutritional interference [ |
| Aflatoxin B2 | AFB2 | ||
| Aflatoxin M1 | AFM1 | ||
| Aflatoxin G1 | AFG1 | ||
| Aflatoxin G2 | AFG2 | ||
| Alternaria toxins | Alternariol | AOH | AOH and AME have no acute toxic effects, but possess carcinogenicity, with an especially high incidence of esophageal cancer [ |
| Altenariol monomethyl ether | AME | ||
| Tenuazonic acid | TeA | TeA has acute toxicity and was listed in the Food and Drug Administration (FAD) toxic chemical register [ | |
| Ochratoxin A | OTA | OTA has nephrotoxic, hepatotoxic, neurotoxic, teratogenic, and immunotoxic effects [ | |
| Deoxynivalenol | DON | DON displays cytotoxicity [ | |
| Zearalenone | ZEA | ZEA displays carcinogenicity, immunotoxicity, genotoxicity, reproductive and developmental toxicity; in addition, it has an effect on the endocrine system [ | |
| Patulin | PTL | PTL displays neurotoxicity, embryotoxicity, teratogenicity, immunotoxicity, and can cause convulsions, dyspnea, pulmonary congestion, edema, ulceration, hyperemia, and distension of the gastrointestinal tract [ | |
| T-2 toxin | T-2 | T-2 is a potent inhibitor of protein synthesis and mitochondrial function, and shows immunosuppressive and cytotoxic effects [ | |
| Fumonisin B1 | FB1 | FB1 can lead to hepatotoxicity, cancer, and apoptosis [ | |
| Citrinin | CIT | CIT displays reproductive toxicity, as well as nephrotoxic, embryotoxic, teratogenic, hepatotoxic, immunotoxic, and carcinogenic properties [ | |
Representative materials used for the fabrication of microchips.
| Materials | Process | Advantages | Disadvantages | |
|---|---|---|---|---|
| Inorganic materials | Silicon [ | Standard photolithography | Resistance to organic solvents, high thermoconductivity, simple metal deposition, stable electroosmotic mobility. | Fragile, opaque, poor electrical insulation, hardness, high cost, time-consuming, labor-intensive, the bonding is difficult and requires a sterile environment. |
| Glass [ | Standard photolithography | Optically transparent and electrically insulating, resistance to organic solvents, high thermoconductivity, simple metal deposition, stable electroosmotic mobility, easy surface modification. | Fragile, high cost, time-consuming, labor-intensive, bonding is difficult and requires a sterile environment. | |
| Elastomeric polymers | PDMS [ | Cast molding | Optically transparent, high elasticity, low cost, easy and reversible binding, non-toxicity, permeability, compatible for cell culture, could integrate with the micropump and microvalve. | Could not withstand high temperatures, low thermoconductivity, strong nonspecific adsorption, poor organic solvent compatibility. |
| Rigid plastic polymers | PMMA [ | Thermal molding | Organic solvent compatibility better than PDMS, low cost, can produce thousands of replicas at a high rate, the thermal bonding does not require a sterile environment. | Poor permeability and heat conductivity, high rigidity, difficult surface modification, cannot withstand high temperatures. |
| PI [ | ||||
| PC [ | ||||
| PS [ | ||||
| PET [ | ||||
| PVC [ | ||||
| COC [ | ||||
| Teflon PFA [ | Extremely inert to chemical solvents, optically transparent, moderate permeability, antifouling, proper mechanical strength, low nonspecific absorption, no leaching of residue molecules from the material bulk into the solution in the channel. | Melting temperatures are high (over 280 °C). | ||
| Teflon FEP [ | ||||
| Hydrogel polymers | PEG [ | UV-induced polymerization | Highly porous with controllable pore sizes, allowing small molecules or even bio-nanoparticles to diffuse through, compatible for cell culture, short preparation time. | The bonding is difficult. |
| Photosensitive polymer | SU-8 photoresist [ | Photolithography | Stable even at high temperatures, resistant to most solvents, and optically transparent. | High cost, high stiffness, poor permeability, and non-uniform thickness. |
| NOA81 [ | Transparent, rapid, solvent-resistant, lower auto-fluorescence, and the thickness can be easily manipulated. | |||
| pCLLA [ | Non-toxicity, biocompatibility, biodegradability, rapidness, and flexibility in materials processing. | |||
| Paper | Paper [ | Lithographic methods and printing (cutting) methods | Portable and low-cost analysis, without the need for power or external components; large surface-to-volume ratio, the cheapest materials. | Liquids may not be well confined in the channel due to hydrophobicity, the applicable detection methods are relatively limited, low detection sensitivity, evaporation of liquid. |
Microchips integrated various kinds of detection methods for detecting mycotoxins.
| Target Analyte | Detection Method | Characteristic of the Microchip | Real Sample | LOD | Reference |
|---|---|---|---|---|---|
| OTA | Fluorescence detection | PDMS microfluidic chip based on aqueous two-phase extraction | Red wine | 0.26 μg/L | [ |
| AFB1 | Fluorescence detection | Smectite-PAM nanocomposite based on strip microfluidic sensor chip | Corn | 6.09 μg/kg | [ |
| FB1 | Fluorescence detection | Microarray immunochip based on synthetic mimotopes | Maize and wheat | 11.1 μg/L | [ |
| OTA | Fluorescence detection | Microarray immunochip | Cereals | 3.8–100 μg/kg | [ |
| Coffee | 7 μg/kg | ||||
| Wine | 38 μg/kg | ||||
| DON | Fluorescence detection | Microarray immunochip | Oats | 0.2–50 μg/kg | [ |
| Effluent | 4 μg/L | ||||
| AFB1 | Fluorescence detection | Protein microarray immunochip | Drinking water | 0.01 μg/L | [ |
| AFM1 | 0.24 μg/L | ||||
| DON | 15.45 μg/L | ||||
| OTA | 15.39 μg/L | ||||
| T-2 | 0.05 μg/L | ||||
| ZEA | 0.01 μg/L | ||||
| AFB1 | Fluorescence detection | High throughput biochip based on photonic crystal microsphere (PHCM) suspension array | Cereal samples | 15.96 × 10−6 μg/L | [ |
| OTA | 3.96 × 10−6 μg/L | ||||
| FB1 | 0.011 μg/L | ||||
| OTA | Chemiluminescence detection | Indirect competitive immunochip | Green coffee | 0.3 μg/L | [ |
| AFs, OTA, DON, FB1 | Chemiluminescence detection | Regenerable microarray immunochip | Oat extracts | / | [ |
| OTA | Colorimetric detection | Combination of an OTA-responsive hydrogel with a distance-based readout V-chip | Beer | 0.51 μg/L | [ |
| AFB1 | Colorimetric detection | Combination of an AFB1-responsive hydrogel with a distance-based readout V-chip | Beer | 0.55 μg/L | [ |
| AFB1 | Colorimetric detection | Integrated, smartphone-app-chip (SPAC) system | Corn | 3 μg/kg | [ |
| AFB1 | Electrochemical detection | 96-well screen-printed microarray immunochip | Corn | 0.03 μg/L | [ |
| AFM1 | Electrochemical detection | Gold microelectrode array immunochip | Milk | 0.008 μg /L | [ |
| CIT | Electrochemical detection | Microfluidic electrochemical immunochip | Rice | 0.1 μg/L | [ |
| DON | Electrochemical detection | Microfluidic chip coupled with gold microelectrode arrays | Wheat | 6.25 μg/L | [ |
| AF | Electrochemical detection | Microfluidic chip coupled with gold microelectrode arrays | Foods | 0.08–0.65 μg/kg | [ |
| ZEA | Electrochemical detection | Microfluidic chips coupled with magnetic bead-based immunoassay | Baby foods | 1 μg/kg | [ |
| ZEA | Electrochemical detection | Microfluidic chips coupled with magnetic bead-based immunoassay | Infant foods | 0.4 μg/L | [ |
| ZEA | Electrochemical detection | Microfluidic chips coupled with magnetic bead-based ELISA | Feedstuffs | 0.41 μg/L | [ |
| OTA | Electrochemical detection | Microfluidic chips coupled with magnetic bead-based ELISA | Apples | 50 μg/kg | [ |
| OTA | Photo-electrochemical detection | Chemiluminescence-based ELISA in microfluidic chip with integrated photodiodes | Beer | 0.1 μg/L | [ |
| Red wine | 2 μg/L | ||||
| OTA | Photo-electrochemical detection | Regenerable chemiluminescence-based immunoassay in microfluidic chip with integrated photodiodes | Red wine | <2 μg/L | [ |
| OTA, AFB1 and DON | Photo-electrochemical detection | Microfluidic multiplexed biosensor chip with a permanent magnet valves | / | / | [ |
| OTA | Photo-electrochemical detection | Aptamer-based sandwich assay in a multichannel microfluidic chip | Beer | 0.82 μg/L | [ |
| AFB1 | MS | Plastic microfluidic chip coupled with ESI-MS | / | / | [ |
| AFs | MS | Microfluidic chip-based nano LC coupled with QqQ-MS | Peanut | 0.004–0.008 μg/kg | [ |
| AFB2 | SPR | Microchip SPR immunochip using anti-AFB2 scFv antibody | Almond | 0.9 μg/L | [ |
| ZEA | SPR | Microchip SPR immunochip using anti-ZEA scFv antibody | Sorghum | 7.8 μg/L | [ |
| NIV | SPR | Microchip SPR immunochip using monoclonal antibody | Wheat | 200 μg/kg | [ |
| DON | 100 μg/kg | ||||
| T-2 and HT-2 | SPR | Microchip SPR immunochip using monoclonal antibody | Baby food and breakfast cereal | 25 μg/kg | [ |
| Wheat | 26 μg/kg | ||||
| T-2 | SPR | Microchip SPR immunochip using monoclonal antibody | Wheat | 31 μg/kg | [ |
| Breakfast cereal | 47 μg/kg | ||||
| Maize-based baby food | 36 μg/kg | ||||
| DON | Wheat | 12 μg/kg | |||
| Breakfast cereal | 1 μg/kg | ||||
| Maize-based baby food | 29 μg/kg | ||||
| PTL | SPR | Microchip SPR immunochip using polyclonal mono-specific antibodies | / | 15.41 μg/L | [ |
| DON | iSPR | Microchip multiplex microassay iSPR immunochip | Maize | 84 μg/kg | [ |
| Wheat | 68 μg/kg | ||||
| ZEA | Maize | 64 μg/kg | |||
| Wheat | 40 μg/kg | ||||
| DON | iSPR | Microchip nanostructured iSPR immunochip | Beer | 17 μg/L | [ |
| OTA | 7 μg/L | ||||
| DON | iSPR | Microchip benchtop SPR (Biacore) with two separates nanostructured iSPR immunochip | Barley | 26 μg/kg | [ |
| ZEA | 6 μg/kg | ||||
| T-2 | 0.6 μg/kg | ||||
| OTA | 3 μg/kg | ||||
| FB1 | 2 μg/kg | ||||
| AFB1 | 0.6 μg/kg | ||||
| DON | SPR-MS | Coupled SPR immunochip and ambient ionization MS | Beer | / | [ |
| AFB1 | iSPR | AuNP-enhanced iSPR immunochip | Spiked peanut | 0.008 μg/L | [ |
| OTA | 0.03 μg/L | ||||
| AEN | 0.015 μg/L | ||||
| OTA | SPR | AuNP-enhanced SPR immunochip | Red wine | 0.068 μg/L | [ |
| AFM1 | SPR | AuNP-enhanced SPR immunochip | Milk | 0.018 μg/L | [ |
| AFB1 | SPR | SPR immunochip based on GBP-ProG crosslinker | Buffer and corn extracts | 1000 μg/L | [ |
| OTA | SPR | SPR microchip based on aptamer | Wine and peanut oil | 0.005 μg/L | [ |
| AFB1 | SPR | SPR microchip based on aptamer | Red wine | 124.91 μg/L | [ |
| OTA | SPR | Localized SPR microchip based on aptamer | Ground corn samples | 403 μg/L | [ |
| OTA | SRP | SPR-polarization microchip based on aptamer | / | 0.005 μg/L | [ |
| DON | SPR | SPR microchip based on MIP | DON standard solution | >1 μg/L | [ |
| ZEA | SPR | SPR microchip based on MIP | Corn | 0.3 μg/kg | [ |
| CIT | SPR | SPR biosensor chip based on MIP | Red yeast rice | 0.0017 μg/L | [ |
| T-2 | SPR | SPR microchip based on nanopatterned π-conjugated MIP | / | 0.47 × 10-4 μg/L | [ |
| OTA | SERS | Microfluidic chip embedded 2D SERS platform | / | / | [ |
| AFB1 | SERS | SERS aptasensor chip based on exonuclease-assisted recycling amplification | Spiked peanuts | 0.4 × 10−6 μg/L | [ |
| DON | OWLS | Immunochip based on OWLS | Wheat flour | / | [ |
| AFB1 | OWLS | Immunochip based on OWLS | Spice paprika samples | 0.35 μg/kg | [ |
| AFB1, OTA | OWLS | Immunochip based on OWLS | Barley and wheat flour samples | / | [ |
| OTA | BB-MZI | Si immunochip based on monolithically integrated BB-MZI | Beer | 2.0 μg/L | [ |
| AFB1, ZEA, HT-2 | GMR | Multiplex magnetic nanotag-based biochip | / | 0.05 μg/L | [ |
Figure 1Conceptual schematic of the integrated microfluidic ATPE (aqueous two-phase extraction) strategy for matrix neutralization and OTA (ochratoxin A) concentration in red wine samples [22]. (Reprinted from reference [22], Copyright (2014), with permission from Royal Society of Chemistry).
Figure 2Schematic presentation of the microarray-based immunoassay for fumonisin detection with biotinylated mimotopes [89]. (Reprinted from reference [89], Copyright (2017), with permission from American Chemical Society).
Figure 3Performance of the HV-Chip for the detection of OTA [98]. (A) Working principle of the target-responsive hydrogel combined with the volumetric bar-chart chip readout for visual quantitative detection. (B) Images showing ink advancement for the detection of OTA in the range of 0 to 1000 nM in 30 min. (C) Linear standard curve was obtained from 0 to 1000 nM OTA. (Reprinted from reference [98], Copyright (2015), with permission from American Chemical Society).
Figure 4(A) Electrode array integrated sensor cassette. (B) A flow cell is formed and the electrode array is fixed to the sensor cassette by means of a double sided sticky tape. (C) For the laboratory prototype, a printed circuit board (PCB) attached clamp is used to establish electronic connections between the electrode arrays and the potentiostat device [106]. (Reprinted from reference [106], Copyright (2014), with permission from Elsevier).
Figure 5(A) Setup used for Biochip Spray MS using a gold biosensor chip held in front of the MS inlet using an alligator clip and (B) spray obtained after adding 10 μL of methanol and applying a voltage of 5 kV. (C) Extracted ion chronogram for m/z 297.1333 ([DON + H]+) recorded in positive ion mode, as obtained from four different corners of a single 1 cm2 square carboxymethylated dextran (CMD) modified gold chip [133]. (Reprinted from reference [133], Copyright (2017), with permission from American Chemical Society).