| Literature DB >> 32182696 |
Long Xu1,2, Xiao-Yi Suo3, Qi Zhang1,3, Xin-Ping Li3, Chen Chen1, Xiao-Ying Zhang1,2,3.
Abstract
Lead is a heavy metal with increasing public health concerns on its accumulation in the food chain and environment. Immunoassays for the quantitative measurement of environmental heavy metals offer numerous advantages over other traditional methods. ELISA and chemiluminescent enzyme immunoassay (CLEIA), based on the mAb we generated, were developed for the detection of lead (II). In total, 50% inhibitory concentrations (IC50) of lead (II) were 9.4 ng/mL (ELISA) and 1.4 ng/mL (CLEIA); the limits of detection (LOD) were 0.7 ng/mL (ic-ELISA) and 0.1 ng/mL (ic-CLEIA), respectively. Cross-reactivities of the mAb toward other metal ions were less than 0.943%, indicating that the obtained mAb has high sensitivity and specificity. The recovery rates were 82.1%-108.3% (ic-ELISA) and 80.1%-98.8% (ic-CLEIA), respectively. The developed methods are feasible for the determination of trace lead (II) in various samples with high sensitivity, specificity, fastness, simplicity and accuracy.Entities:
Keywords: ELISA; chemiluminescent enzyme immunoassay (CLEIA); isothiocyanobenzyl-EDTA (ITCBE); lead (II); monoclonal antibody (mAb)
Year: 2020 PMID: 32182696 PMCID: PMC7143091 DOI: 10.3390/foods9030305
Source DB: PubMed Journal: Foods ISSN: 2304-8158
Permitted maximum amount of lead.
| Fresh Vegetable | Cereals | Fresh Fruits | Mushroom | Beans | Livestock and Poultry Meat | Livestock and Poultry Gut | Fish | Salt | Drinking Water (mg/L) | |
|---|---|---|---|---|---|---|---|---|---|---|
| CAC [ | 0.1 | 0.2 | 0.1 | - | 0.2 | 0.1 | 0.5 | 0.3 | 2 | 0.01 |
| EFSA [ | 0.1 | 0.2 | 0.1 | 0.3 | 0.2 | 0.1 | 0.5 | 0.3 | - | 0.01 |
| CFDA [ | 0.1 | 0.2 | 0.1 | 1 | 0.2 | 0.2 | 0.5 | 0.5 | 2 | 0.01 |
| FSANZ [ | 0.1 | 0.2 | 0.1 | - | 0.2 | 0.1 | 0.5 | 0.5 | - | 0.05 |
Notes: CAC: Codex Alimentarius Commission; CFDA; Chinese Food and Drug Administration; EFSA: European Food Safety Authority; FSANZ: Food Standards Australia New Zealand.
Figure 1UV absorbance spectra of lead (II)-ITCBE, BSA and lead (II)-ITCBE-BSA.
Figure 2Standard curve of the competitive ELISA for lead ions.
Cross-reactivity of anti-lead IgG with other metal ions (n = 3).
| Compounds | IC50 (µg/L) | Cross-Reactivity (%) |
|---|---|---|
| Pb2+ -ITCBE | 9.4 | 100 |
| Hg2+ -ITCBE | >1×103 | <0.943 |
| Cd2+ -ITCBE | >1×103 | <0.943 |
| Cr3+ -ITCBE | >1×103 | <0.943 |
| Cu2+ -ITCBE | >1×103 | <0.943 |
| Co2+ -ITCBE | >1×103 | <0.943 |
| Ni2+ -ITCBE | >1×103 | <0.943 |
| Zn2+ -ITCBE | >1×103 | <0.943 |
| Fe2+ -ITCBE | >1×103 | <0.943 |
Figure 3Standard curve of the competitive CLEIA for lead ions.
Figure 4Standard curve of the GFAAS for lead ions.
Recovery ratio of Pb2+ from different samples (n = 4).
| Samples | ELISA | CLEIA | AAS | |||||||
|---|---|---|---|---|---|---|---|---|---|---|
| Spiked | Mea-sured | Recovery | RSD | Mea-sured | Recovery | RSD | Mea-sured | Recovery | RSD | |
| (ng/g) | (ng/g) | (%) | (%) | (ng/g) | (%) | (%) | (ng/g) | (%) | (%) | |
| Chicken | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 91.0 | 91.0 | 10.1 | 88.2 | 88.2 | 16.0 | 92.1 | 92.1 | 8.9 | |
| 200 | 197.5 | 98.7 | 11.4 | 182.2 | 91.1 | 2.5 | 196.4 | 98.2 | 0.2 | |
| 500 | 442.3 | 88.5 | 15.0 | 487.4 | 97.5 | 4.3 | 482.5 | 96.5 | 0.3 | |
| Rice | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 82.1 | 82.1 | 5.5 | 98.8 | 98.8 | 12.1 | 90.2 | 90.2 | 9.1 | |
| 200 | 189.1 | 94.6 | 8.4 | 176.4 | 88.2 | 9.3 | 204.0 | 102.0 | 4.7 | |
| 500 | 405.2 | 81.0 | 1.7 | 419.3 | 83.9 | 11.7 | 521.2 | 104.2 | 0.2 | |
| Chicken feed | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 83.8 | 83.8 | 6.8 | 91.3 | 91.3 | 6.8 | 83.3 | 83.3 | 8.7 | |
| 200 | 216.5 | 108.3 | 12.1 | 164.5 | 82.2 | 12.0 | 209.2 | 104.6 | 0.3 | |
| 500 | 430.8 | 86.1 | 6.8 | 429.9 | 85.9 | 10.6 | 495.7 | 99.1 | 0.2 | |
| Rat feed | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 83.0 | 83.0 | 9.6 | 82.0 | 82.0 | 11.0 | 80.3 | 80.3 | 1.4 | |
| 200 | 171.9 | 85.9 | 8.5 | 175.2 | 87.6 | 8.2 | 195.5 | 97.7 | 0.3 | |
| 500 | 410.5 | 82.1 | 9.6 | 453.5 | 90.7 | 10.9 | 522.5 | 104.5 | 1.6 | |
| Milk | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 94.5 | 94.5 | 12.0 | 85.6 | 85.6 | 12.3 | 88.01 | 88.01 | 8.0 | |
| 200 | 175.0 | 87.5 | 10.5 | 160.3 | 80.1 | 2.3 | 194.6 | 97.3 | 0.6 | |
| 500 | 486.7 | 97.3 | 14.1 | 463.2 | 92.6 | 8.4 | 456.5 | 91.3 | 0.3 | |
| Tap water | 0 | <LOD | -- | --- | <LOD | -- | --- | <LOD | -- | --- |
| 100 | 107.7 | 107.7 | 10.2 | 90.9 | 90.9 | 8.7 | 94.2 | 94.2 | 9.3 | |
| 200 | 188.3 | 94.1 | 9.8 | 172.8 | 86.4 | 5.0 | 187.4 | 93.7 | 0.5 | |
| 500 | 513.0 | 102.6 | 3.6 | 426.3 | 85.3 | 4.2 | 524.5 | 104.9 | 0.2 |
Figure 5Correlation of ELISA and CLEIA to GFAAS on lead ions analysis.