| Literature DB >> 33046788 |
Harshitha Venkataratnam1, Orla Cahill2, Chaitanya Sarangapani2, P J Cullen2,3,4, Catherine Barry-Ryan2.
Abstract
Cold plasma is emerging as a novel food processing technology, with demonstrated efficacies for microbial inactivation and residual chemical dissipation of food products. Given the technology's multimodal action it has the potential to reduce allergens in foods, however data on the efficacy and mechanisms of action are sparse. This study investigates the efficacy of cold plasma on major peanut allergens (Ara h 1 and Ara h 2). For this purpose, dry, whole peanut (WP) and defatted peanut flour (DPF) were subjected to an atmospheric air discharge using a pin to plate cold plasma reactor for different treatment durations. With increases in plasma exposure, SDS-PAGE analysis revealed reduced protein solubility of the major peanut allergens. Alterations in allergenicity and structure of Ara h 1 and Ara h 2 were examined using ELISA and circular dichroism (CD) spectroscopy. Competitive ELISA with proteins purified from plasma treated WP or DPF revealed reduced antigenicity for both Ara h 1 and Ara h 2. The highest reduction in antigenicity was 65% for Ara h 1 and 66% Ara h 2 when purified from DPF. Results from CD spectroscopy analysis of purified proteins strongly suggests the reduction in antigenicity is due to modifications in the secondary structure of the allergens induced by plasma reactive species. Cold plasma is effective at reducing peanut protein solubility and causes changes in allergen structure leading to reduced antigenicity.Entities:
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Year: 2020 PMID: 33046788 PMCID: PMC7550356 DOI: 10.1038/s41598-020-72636-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Large volume plasma discharge in atmospheric air using an 88-pin electrode.
Figure 2SDS PAGE analysis of Whole peanut (a) and defatted peanut flour (b) before and after plasma treatment.
Figure 3Western blot analysis of Whole peanut (a) and Defatted peanut flour (b) of Ara h 1 (Note: Lane 1: Control; Lane 2 15 min; Lane 3: 30 min; Lane 4: 45 min Lane 5: 60 min).
Figure 4Western blot analysis of Whole peanut (a) and Defatted peanut flour (b) of Ara h 2 (Note: Lane 1: Control; Lane 2 15 min; Lane 3: 30 min; Lane 4: 45 min Lane 5: 60 min).
Figure 5Competitive ELISA of Ara h 1 in cold plasma treated WP (a) and DPF (b).
Figure 6Competitive ELISA of Ara h 2 in cold plasma treated WP (a) and DPF (b).
Figure 7CD spectroscopy of Ara h 1 in WP (a) and DPF (b).
Figure 8CD spectroscopy of Ara h 2 in WP (a) and DPF (b).
Percentage of the secondary structure in Ara h 1 and Ara h 2 in WP and DPF.
| Control (%) | 15 min (%) | 30 min (%) | 45 min (%) | 60 min (%) | ||
|---|---|---|---|---|---|---|
| α-helix | 52 | 50 | 46 | 39 | 35 | |
| β-strands | 30 | 27 | 27 | 29 | 25 | |
| Random Coil | 18 | 23 | 27 | 32 | 40 | |
| α-helix | 52 | 46 | 42 | 36 | 32 | |
| β-strands | 30 | 34 | 36 | 32 | 29 | |
| Random Coil | 18 | 20 | 22 | 32 | 39 | |
| α-helix | 48 | 44 | 36 | 34 | 32 | |
| β-strands | 32 | 29 | 23 | 27 | 25 | |
| Random Coil | 20 | 27 | 39 | 39 | 43 | |
| α-helix | 48 | 42 | 39 | 33 | 26 | |
| β-strands | 32 | 31 | 33 | 31 | 36 | |
| Random Coil | 20 | 27 | 28 | 36 | 38 | |