| Literature DB >> 25184275 |
Min Li1, Peiwu Li2, Hui Wu3, Qi Zhang3, Fei Ma4, Zhaowei Zhang4, Xiaoxia Ding5, Hengling Wang6.
Abstract
Sterigmatocystin (STG), a biosynthesis precursor of aflatoxin B1, is well known for its toxic and carcinogenic effects in humans and animals. STG derivatives and protein conjugates are needed for generation of monoclonal antibodies (mAbs). This work describes a reliable and fast synthesis of novel STG derivatives, based on which novel STG bovine serum albumin conjugates were prepared. With the novel STG bovine serum albumin conjugates, three sensitive and specific mAbs against STG, named VerA 3, VerA 4, and VerA 6, were prepared by semi-solid hypoxanthine/aminopterin/thymidine (HAT) medium using a modified two-step screening procedure. They exhibited high affinity for STG and no cross-reactivity (CR) with aflatoxins B1, B2, G1, G2, and M1. Based on the most sensitive antibody VerA 3, an ultra-sensitive competitive enzyme-linked immunosorbent assay (ELISA) was developed for STG in wheat, maize, and peanuts. Assays were performed in the STG-GA-BSA-coated (0.5 µg · mL(-1)) ELISA format, in which the antibody was diluted to 1:80,000. Several physicochemical factors influencing assay performance, such as pH, ionic strength, blocking solution, and diluting solution, were optimized. The final results showed that the assays had the detection limits of 0.08 ng · g(-1) for wheat, 0.06 ng · g(-1) for maize, and 0.1 ng · g(-1) for peanuts, inter-assay and intra-assay variations of less than 10%, and recoveries ranging from 83% to 110%. These recoveries were in good agreement with those obtained by using HPLC-MS/MS method (90-104%), indicating the importance of the mAb VerA 3 in the study of STG in crude agricultural products.Entities:
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Year: 2014 PMID: 25184275 PMCID: PMC4153633 DOI: 10.1371/journal.pone.0106415
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Synthesis procedure for the sterigmatocystin artificial antigen through AEM.
Final screening results of hybridoma cells resulted from fusions of splenocytes.
| Clone | Titer | OD 450 nm values | Blank | |
| STG | ||||
| 100 ng/mL | 0 ng/mL | |||
| VerA 3 | 800 | 0.1012 | 1.053 | 0.0873 |
| VerA 4 | 400 | 0.1123 | 1.032 | 0.0972 |
| VerA 6 | 50 | 0.1240 | 0.986 | 0.0108 |
The titer was defined as the reciprocal of the dilution that gave an absorbance most close to 1.0.
STG was prepared by diluting the stock solution with 10% methanol-PBS to 200 ng mL−1 and mixed with equivalent supernatants, and the final concentrations were 100 ng mL−1. Aflatoxins of 0 ng mL−1 were the PBS containing the same methanol content.
Titers and isotypes of ascites antibodies.
| Clone | Titer | OD 450 nm | Value | Isotype | ||
| Negative control serum | 1% BSA | Blank | Heavychain | Lightchain | ||
| VerA 3 | 6.4×105 | 0.093 | 0.091 | 0.088 | IgG1 | Kappa |
| VerA 4 | 3.2×105 | 0.106 | 0.102 | 0.097 | IgG2a | Kappa |
| VerA 6 | 3.2×105 | 0.097 | 0.089 | 0.095 | IgG2a | Kappa |
The titer was defined as the reciprocal of the dilution that gave an absorbance most close to 1.0.
Figure 2Influences of different factors, including coating antigen and antibody dilution ratio (a), blocking reagents (b), pH (c), ionic strength (d), and diluting solution (e) on the performance of the assay, with the results being the mean of three independent experiments.
Sensitivity (expressed as ng mL−1) and the minimal and maximal inhibition values of the three monoclonal antibodies.
| Clone | Titers | STG(ng/mL) | ||
| IC20
| IC50
| IC80
| ||
| VerA 3 | 8×104 | 0.03 | 0.36 | 2.70 |
| VerA 4 | 4×104 | 0.12 | 0.75 | 3.16 |
| VerA 6 | 4×104 | 0.098 | 1.71 | 16.76 |
Concentration at which the binding of the antibody to the coating antigen is inhibited by 20%.
Concentration at which the binding of the antibody to the coating antigen is inhibited by 50%.
Concentration at which the binding of the antibody to the coating antigen is inhibited by 80%.
Figure 3Standard curves for STG with each point representing the mean ± SD from five determinations in competitive ELISA.
Recovery analysis of the STG spiked in cereal and oil products.
| Matrix | Expected(ng/g) | IAC-icELISA Found | Recovery (%) | HPLC-MS/MS Found | Recovery (%) | |
| Wheat | Within assay | 5 | 5.40±0.40 | 108.0 | 4.51±0.21 | 90.2 |
| 10 | 9.62±0.45 | 96.2 | 9.67±0.35 | 96.7 | ||
| 20 | 18.90±0.78 | 94.5 | 20.06±0.64 | 100.3 | ||
| Between assay | 5 | 5.51±0.53 | 110.2 | 4.57±0.08 | 91.4 | |
| 10 | 9.46±0.61 | 94.6 | 9.56±0.04 | 95.6 | ||
| 20 | 19.40±0.97 | 97.0 | 20.64±0.13 | 103.2 | ||
| Maize | Within assay | 5 | 4.61±0.37 | 92.2 | 4.59±0.18 | 91.8 |
| 10 | 10.2±0.51 | 102.8 | 9.69±0.27 | 96.9 | ||
| 20 | 20.06±0.74 | 100.3 | 20.48±0.34 | 102.4 | ||
| Between assay | 5 | 4.53±0.41 | 90.6 | 4.63±0.11 | 92.6 | |
| 10 | 9.71±0.89 | 97.1 | 9.87±0.08 | 98.7 | ||
| 20 | 19.85±1.04 | 99.3 | 20.88±0.20 | 104.4 | ||
| Peanut | Within assay | 5 | 4.17±0.18 | 83.4 | 4.55±0.13 | 91.0 |
| 10 | 8.74±0.51 | 87.4 | 9.33±0.25 | 93.3 | ||
| 20 | 18.65±1.21 | 93.3 | 18.92±0.17 | 94.6 | ||
| Between assay | 5 | 4.39±0.30 | 87.8 | 4.52±0.09 | 90.4 | |
| 10 | 9.21±0.75 | 92.1 | 9.25±0.14 | 92.5 | ||
| 20 | 20.14±1.67 | 100.7 | 18.88±0.08 | 94.4 |
The reported data are the mean ± SD.
The assays are carried out in six replicates on the same day.
The assays are carried out in six different days.