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Based on our previous experience28, we have developed a simple, inexpensive, environment-friendly, chemical procedure suitable for the exploration of wild Arachis germplasm collections to identify species resistant to Aspergillus and to determine and characterize novel sources of genetic resistance to this opportunistic fungus. This method is based on seed extract purification by a solid phase extraction (SPE) technique and aflatoxin quantification by Ultra Performance Liquid Chromatography (UPLC) and is characterized by sufficiently high recovery, precision, and accuracy. The proposed "Florisil" method is a modification of the single minicolumn cleanup procedure that is based on the unique property of Florisil (magnesium silica gel) to strongly and selectively retain aflatoxins28. As in the original method, seed samples were extracted with MeOH-H2O mixture but at a different proportion of 90:10 (v/v) compared to the published 80:20 (v/v). This change has increased the flow rate of solvents through the cleanup column up to 2.5x with the same aflatoxin recovery rate. This 90:10 (v/v) methanol-water mixture provided nearly 100% recovery of aflatoxins B1, B2, G1, and G2 standards added to extracting solvent at spike levels equivalent to 5-50 ng of aflatoxin concentrations in 1 g of a substrate, as well as provided sufficiently high recoveries from the spiked peanut seed samples (Table 1).
It has been shown that aflatoxins can be eluted from the Florisil adsorbent only with large volumes of acetone30, acetone-methanol31,32, and acetone-water mixtures33,34,35,36. In the course of the present research, we discovered that acidified acetonitrile behaves similarly to acetone in its ability to elute aflatoxins from Florisil. To our knowledge, this property of acetonitrile has not been reported in the literature. The discovery of this property allows injecting purified extract directly into the UPLC system omitting the solvent evaporation step, which substantially reduces the preparation time. Even when acetonitrile was mixed with acetone (acetone-acetonitrile-water-88% formic acid (65:31:3.5:0.5, v/v)), it provided smooth, complete, and fast removal of water from the purified eluates substantially reducing solvent evaporation time. The presence of acetonitrile allowed for the use of a single solvent, methanol-water (90:10, v/v) mixture to effectively remove impurities from the Florisil column compared to a published method, where two additional washing solvents, methanol and chloroform-methanol mixture, was required.28
On average, aflatoxin B1 standard recovery was ~98% when using 1.2 mL for the elution of aflatoxins. The amount of 50 mg of Florisil was selected so that 1.2 mL of the elution solvent filled the minicolumn to the top of the barrel and, at the same time, provided satisfactory recovery (Table 1). This approach expedites the cleanup procedure as the column barrel needs to be filled only once. In the early stages of this project, it was not clear whether a commercial Florisil fraction with a relatively large particle size, 100-200 mesh, would be appropriate for a small column holding only a 3 mm layer of the adsorbent. Therefore, we explored different Florisil fractions obtained from a commercial 100-200 mesh product using U.S.A. standard test sieves 120-140, 140-170, 170-200, 200-270, 270-400, and >400 mesh. All these fractions provided reproducible, nearly matching results with satisfactory recovery. Although smaller particle-size fractions demonstrated narrower aflatoxin bands in the column under UV light, those fractions were not superior in any respect to the commercial 100-200 mesh product. In addition, the 100-200 mesh fraction demonstrated the shortest elution times (8-12 min) for the entire procedure.
Gradient UPLC solvent delivery allowed for satisfactory separation of aflatoxins as well as for complete removal of non-polar impurities from the column (Figure 5G). This approach led to flawless column operation and reproducible results of the analyses of hundreds of samples. The identity of aflatoxins eluted from the Florisil column was confirmed as previously described.28 The 3-mm diameter analytical UPLC column used here demonstrated higher selectivity and more reliable separation of aflatoxins B1, B2, G1, and G2 at higher concentrations compared to the 2.1-mm diameter column of the same chemistry. Moreover, the longevity of the 3 mm column (over 1,200 injections) was substantially higher than that of the 2.1-mm column (up to 800 injections). Even though the 3 mm column required a higher rate of the mobile phase (40% more), this drawback was outperformed by the above advantages of the column.
The Florisil minicolumn was effective for the purification of extracts of peanut seeds heavily contaminated with Aspergillus metabolites (Figure 5G); such seeds also contained high levels of stilbenoid phytoalexins that were produced by seeds in response to the fungal invasion. All those impurities may exceed aflatoxin concentration in the seeds up to 106-fold22, which makes these seeds challenging objects for aflatoxin analyses. Figure 5G shows the lack of interfering peaks in the chromatogram within aflatoxin retention times, which made aflatoxin detection and quantitation uncompromised at all levels tested (Table 1). As seen in Table 1, the accuracy and precision of the method were sufficiently high within the tested range of 1.0-50.0 ng/g, which is also the most critical range for aflatoxin detection. The recoveries at different levels for various wild peanut genotypes were uniform and the standard deviations for five different extractions were essentially low.
The method was also tested on peanut, cotton, corn, and rice seeds naturally contaminated from zero to extremely high levels-over 10,000 ng/g of total aflatoxins. Recovery of aflatoxins B1, B2, G1, and G2 from corn, cottonseed, and rice at the 5 ng/g level varied from 76.1% to 93.7%, 77.1% to 86.6%, and 90.5% to 96.2%, respectively. The highest recovery of aflatoxins from rice was accompanied by the eluent's "purity", that is, virtually the lack of any impurities. Further, rice represented the smallest single object tested, on average, 19 mg/seed.
The total preparation time for a single peanut seed (including shelling, weighing, extraction, centrifugation, and purification) using a Florisil column did not exceed 20 min. The cost of the Florisil minicolumn is >10x less than that of commercial cleanup columns. Additional savings derive from using lower volumes of adsorbents, solvents, and nitrogen gas compared to the published procedure28. The minicolumn does not require pumping or vacuum devices to operate and has an indefinite shelf life.
Exploring plant germplasm for resistance to aflatoxins is exceptionally difficult because mycotoxin accumulation does not follow a normal distribution37,38; a large number of aflatoxin analyses in single seeds is needed to overcome this phenomenon. In addition to aflatoxin content, information on quantitative phytoalexin composition is highly valuable in the light of a large body of information that can be obtained from a single seed (Figure 1A) and tracked to a specific plant (Figure 1E). The method has been successfully used for screening hundreds of accessions including landraces, advanced breeding lines, and elite peanut varieties. The method is suggested for use in peanut prebreeding and breeding research programs and may help in the characterization of peanut genes for fungal resistance.