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Omics Technologies Applied to Agriculture and Food
Identification of duck egg white N-glycoproteome and insight into the course of biological evolution Yaqi Meng, Ning Qiu, Fang Geng, Yinqiang Huo, Hao hao Sun, and Russell Keast J. Agric. Food Chem., Just Accepted Manuscript • DOI: 10.1021/acs.jafc.9b03059 • Publication Date (Web): 12 Aug 2019 Downloaded from pubs.acs.org on August 12, 2019
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Journal of Agricultural and Food Chemistry
Identification of duck egg white N-glycoproteome and insight into the course of biological evolution Yaqi Meng1, Ning Qiu1,2*, Fang Geng3**, Yinqiang Huo2, Haohao Sun1, Russell Keast4
1. Key Laboratory of Environment Correlative Dietology, Ministry of Education, National Research and Development Center for Egg Processing, College of Food Science and Technology, Huazhong Agricultural University, Wuhan 430070, P. R. China 2. Department of Chemical Engineering and Food Science, Hubei University of Arts and Science, Xiangyang, P. R. China 3. Meat Processing Key Laboratory of Sichuan Province, College of Pharmacy and Biological Engineering, Chengdu University, No. 2025 Chengluo Avenue, Chengdu, 610106, P. R. China 4. Centre for Advanced Sensory Science, School of Exercise and Nutrition Sciences, Deakin University, Burwood, VIC, Australia 3125 *
**
Corresponding author. Co-Corresponding author
Dr. Qiu, Fax: +86 27 87283177; e-mail:
[email protected]; Tel: +86 27 87283177
1
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ABSTRACT
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Protein glycosylation is a ubiquitous posttranslational modification, which
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modulates protein properties, thereby influencing bioactivities within a system. Duck
4
egg white (DEW) proteins exhibit diverse biological properties compared with
5
chicken egg white (CEW) counterparts, which might be related to glycosylation. The
6
N-glycoproteome analysis of DEW was conducted, and a total of 231 N-glycosites
7
from 68 N-glycoproteins were identified. Gene Ontology analysis was used to
8
elucidate the biofunctions of DEW N-glycoproteins and compared with those of
9
CEW, which showed that the difference mostly participated in molecular function and
10
biological process. The biological functions of DEW N-glycoproteins were
11
illuminated through bioinformatic analysis for comparing with CEW orthologues,
12
which showed different allergenicities and anti-bacterial abilities. These divergences
13
might be initiated by specific alterations in glycosylation which enhance the
14
proteolysis resistance and protein steric hindrance. These results provide new insights
15
for discovering the effects of N-glycosylation on biofunctions during the divergence
16
of homologue proteins.
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KEYWORDS
18
Duck egg white, N-glycoproteins, Bioinformatic analysis, Bioactivities, Evolution
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INTRODUCTION Protein glycosylation is a posttranslational modification which is involved with
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modifying protein properties and bioactivities.1,
2
22
complexity of egg proteins conformation, resulting in diverse functional properties.3-5
23
For example, Quan et al. found that desugarization of duck egg white (DEW) could
24
markedly improve the gelling properties and make the gel network more compact and
25
denser.3 In addition, some protein bioactivities can be affected by the binding ability
26
of carbohydrate moieties. For instance, the antivirus activity of egg ovomucin could
27
be increased by the interaction of Mg2+ and the carbohydrate moieties of ovomucin.4
28
Furthermore, the glycosylation of certain egg white proteins was also recognized to
29
affect the egg-induced allergies.5 Alcántara et al. reported a patient with the allergy to
30
DEW without chicken egg white (CEW) allergy and suggested that ovalbumin (OVA)
31
might be the responsible protein.6 It was speculated that the specific egg allergenicity
32
between Anseriformes and Galliformes may be due to the glycoprotein differences.
N-glycosylation increases the
33
East Asia is one of the major areas for duck domestication and has a 2,000 years
34
history of duck farming.7 Duck is a kind of waterfowl which often nest in the high
35
humidity conditions and are omnivorous. Globally, hen eggs are the most consumed
36
avian eggs, while duck eggs are specifically utilized for food processing in East Asia,
37
particularly processed into salted, dried and preserved eggs.8 About 3 to 4 million
38
ducks are raised each year in China, which provides an important supplement to the
39
poultry industry. Besides the utilization of DEW in food processing industry, some
40
DEW proteins also show diverse functions from their counterparts of CEW.9-11 For 3
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instance, DEW cystatin presents phosphorylated and glycosylated properties, both of
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which are absent in CEW.9 The gels from DEW exhibited higher cohesiveness and
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water binding property than those from CEW.10 In addition to the difference in
44
proteins structure and property, the enzymatic activity of lysozyme in DEW is higher
45
than its CEW counterpart.11 Geng et al. speculated that the CEW ovostatin lost some
46
conversed N-glycosites by comparing with the other avian egg white ovostatins,
47
which might be related to the longer domestication processes.12 Our previous
48
proteomic study had performed the comparison of specific proteins between duck and
49
chicken egg whites, the discrepancy in the glycosylation level between DEW and
50
CEW have not been investigated.13
51
Glycomics has been used to study the protein glycosylation in avian egg whites and
52
its relationship with avian evolution14-16. A large-scale glycans investigation in the
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different evolutionary lineage was made through the advanced glycoblotting-based
54
high-throughput glycomics, which suggested that the differences of the glycans types
55
and amounts between Anseriformes and Galliformes might be related to their
56
lifestyles and diet.14 The Galβ1-4Gal epitope glycans from nine avian species egg
57
whites were investigated. The different expression of Galβ1-4Gal among the nine
58
species may be due to the evolutionary difference, leading to different susceptibilities
59
to specific infectious diseases.15 Recently, a glycoblotting study on the egg white
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proteins of four different quail species revealed various N-glycan structures.16 Besides
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the glycomics, glycoproteomics has also been used for analyzing species difference.
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The characterization and comparison of whey N-glycoproteins from bovine and 4
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human colostrum and mature milk may provide insight into the application of infant
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formulae.17 A detailed N-glycosylation analysis of the royal jelly protein between
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western and eastern honeybees revealed species-specific modifications and variations
66
in immune functions.18 The N-glycoproteomic analysis of chicken egg yolk was
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conducted and provided a further understanding of embryo development, egg storage,
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and processing.19 Although glycomics analysis had been extensively used to study the
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avian egg whites, studies involving glycoproteomics are scarce. Our former omics
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analysis of CEW glycoproteins identified 71 N-glycosylation sites on 26
71
glycoproteins, which gave a basic understanding of CEW glycoproteins for further
72
comparison with other avians.20
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Hence, the comparative analysis of egg white N-glycoproteins between chicken and
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duck is expected to provide insight into the avian evolution.20 Previous studies have
75
investigated the N-glycoproteins in some avian eggs, but little is known on the DEW
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N-glycoproteome. The DEW protein was digested by trypsin and subsequently
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deglycosylated by PNGase F in H218O. The glycosylated asparagine was transferred to
78
aspartic acid with mass increased in 2.98 Da, which is detectable by LC-MS/MS. The
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glycoproteins characterization of DEW and the glycoproteome comparison to that of
80
CEW are important to reveal the species diversity on bioactivities. Furthermore, this
81
study will facilitate a better understanding of the glycoprotein evolution among
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different avian species.
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MATERIALS AND METHODS 5
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Sample Collection. Duck eggs laid within 24 hours were collected from the Poultry
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Research Centre farm of Huazhong Agricultural University (Wuhan, Hubei). To
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reduce variation, duck eggs were selected from a flock of 40-week-old Peking ducks
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reared in separate floor pens under standard feeding conditions. A total of nine eggs
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were randomly collected and manually separated egg white from egg yolk. Three
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sampling repeats were homogenized respectively and were further frozen at -80 ℃
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and stored at this temperature till the following analysis.
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Protein Extraction. The frozen DEW (1 mL) lyophilized powder was grinded and
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sonicated (150 W, 30 s each time) in four volumes of lysis buffer (10 mmol/L
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dithiothreitol, 1% protease inhibitor cocktail, and 1% phosphorylase inhibitor),
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followed by centrifugation with isometric Tris-saturated phenol at 5,500 × g at 4 ℃
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for 10 min. Then, the supernatant was mixed with four volumes of ammonium
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acetate/methanol (0.1 mol/L) and incubated overnight. After that, the remaining
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precipitate was washed with methanol and acetone respectively. The protein was
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redissolved in 8 mol/L urea and then the protein concentration was determined by
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using BCA kit according to the manufacturer’s instructions.21
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Trypsin Digestion. The method was based on our previous protocol.20 For digestion,
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the DEW protein solution was treated with 5 mmol/L dithiothreitol for 30 min at 56 ℃
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and then with 11 mmol/L iodoacetamide for 15 min at room temperature in the dark.
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The alkylated samples were diluted by adding 100 mmol/L NH4HCO3 to make the
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urea concentration less than 2 mol/L. Finally, trypsin (Promega) was added (trypsin:
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protein, 1:50, w/w) for the first digestion overnight and (trypsin: protein, 1:100, w/w)
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for a second 4 h-digestion respectively.
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HPLC Fractionation. The tryptic peptides were fractionated by high pH
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reverse-phase HPLC using Thermo Betasil C18 column (5 μm particles, 10 mm inner 6
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diameter, 250 mm length). The peptides were separated firstly with a gradient of 8%
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to 32% acetonitrile (pH 9.0) over 60 min into 60 fractions (Figure S2A). Then, the
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peptides were combined into four fractions and dried by vacuum centrifuging (Figure
113
S2B).
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Glycopeptides Enrichment. To enrich the DEW glycosylation peptides, tryptic
115
peptides were dissolved in the enrichment buffer (40 µL, 80% acetonitrile and 1%
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trifluoroacetic acid) and then transferred to the hydrophilic interaction liquid
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chromatography microcolumn (HILIC, SeQuant, Southborough, MA, USA) with
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centrifuge at 4000 × g for 15 min. After that, the enrichment buffer was used to wash
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3 times on the hydrophilic microcolumn of HILIC.22 After using 10% acetonitrile to
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elute the glycopeptides, the elute was collected and lyophilized. Then, the
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glycopeptides were redissolved in the 50 mmol/L ammonium bicarbonate buffer (50
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µL), added with 2 µL of PNGase F (Roche, 11365185001, Mannheim, Germany) and
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incubated at 37°C overnight. For LC-MS/MS analysis, the resulting peptides were
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desalted with C18 ZipTips (Millipore, Billerica, MA, USA) according to the
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manufacturer’s instructions and the enriched DEW glycopeptides were lyophilized.
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LC-MS/MS Analysis. The separating and analysis of the glycopeptides were carried
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out by UPLC-NSI-MS/MS with an ESAY-nLC 1000 UPLC system (Thermo Fisher
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Scientific, Bremen, Germany). The tryptic glycopeptides were dissolved in 0.1%
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formic acid and 2% acetonitrile (solvent A). The gradient of solvent B (0.1% formic
130
acid in 98% acetonitrile) was comprised an increase from 5% to 20% over 26 min,
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20% to 32% in 8 min, then climbing to 80% in 3 min and holding at 80% for 3 min.
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The constant flow rate was all at 700 nL/min. Then, the peptides were subjected to
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NSI source followed by tandem mass spectrometry in the Orbitrap FusionTM. The
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electrospray voltage applied was 2.2 kV. The first-order m/z scan range was 350 to 7
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1550, and intact peptides were detected at a resolution of 60,000 in the Orbitrap.
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Then, the peptides were detected in the Orbitrap at a resolution of 15,000. A
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data-dependent procedure that alternated between one MS scan followed by 20
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MS/MS scans with 15 s dynamic exclusion. Automatic gain control was set at 5E4.
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Database Search. The secondary mass spectrometry data was retrieved using
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Maxquant search engine (v1.5.2.8) and compared against the NCBI databases
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(organism: Anas platyrhynchos). As the cleavage enzyme, trypsin was allowed up to 2
142
missing cleavages. The first search and the main search of mass tolerances of the
143
precursor ions were set as 20 ppm and 5 ppm respectively. Subsequent mass tolerance
144
was set to 0.02 Da for the fragment ions. Carbamidomethyl on Cys was specified as
145
fixed modification, oxidation on Met and deamidation with 18O on Asn were specified
146
as variable modifications. For identification, the false discovery of the peptide and site
147
levels rate was specified as 1%.
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Bioinformatics Analysis. Gene Ontology (GO) analysis of the identified DEW
149
glycoproteins was derived using the database for annotation. The pathways were
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identified according to the Kyoto Encyclopedia of Genes and Genomes database. All
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identified glycoprotein name identifiers were searched against the STRING database
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version 10.5 for protein-protein interactions. Protein-protein interaction network of
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the glycoproteins was also established with the use of Cytoscape software. The
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functional description of ovotransferrin (OTF) was annotated against the database of
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InterProScan (http://www.ebi.ac.uk/interpro/). The locations of the N-glycosylation
156
sites of OTF were visualized and presented by Illustrator for Biological Sequences 1.0
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program.23 The data of CEW N-glycoproteins from our previous study were used for
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bioinformatic analysis and comparison with that of DEW.20
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RESULTS AND DISCUSSION
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Mapping of the N-glycosites in DEW proteins
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To study the N-glycoproteins in DEW samples, the tryptic DEW peptides were
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treated with PNGase F to remove the N-glycans for subsequent LC-MS/MS analysis.
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Based on the shift in protein molecular mass, a total of 68 N-glycoproteins carrying
165
231 N-glycosites were identified (Table S1). All the peptide ions had a mass tolerance
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less than 5 ppm, indicating high precision (Figure 1A). The distribution of DEW
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N-glycosites was shown in Figure 1B. Of these N-glycoproteins, 37 glycoproteins
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from DEW contained a single glycosite, which was more than that of CEW (12
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glycoproteins).20 The number of glycosites per DEW protein varied from 1 to 42. The
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highest number of N-glycosites (42 sites) was detected in mucin-5B (Table S1), while
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only 15 N-glycosites were identified in CEW mucin-5B.20 Most of the N-glycosites
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identified in DEW were matched with the N-X-[T/S] (X≠proline/p) motif, and the
173
proportion of the N-X-T motif (36%) was higher than that of N-X-S (26%) (Figure
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1C). In addition to the conserved N-X-[T/S] motif, N-X-C was shown to present at a
175
high frequency in this study, and the frequency of the less detected motifs was higher
176
in DEW (32%) than that in CEW (9%).20
177
Bioinformatic analysis of DEW N-glycoproteins
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The detected N-glycoproteins of DEW were conducted with GO analysis. As
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shown in Figure 2, all mapped N-glycoproteins were classified in accordance with
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their biological processes, cellular component, and molecular function at level 2.
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Multiple N-glycoproteins coevolved with the rise of extracellular processes,
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potentially signifying significant role in organism development, embryo growth, and
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organ formation.24 In the present study, the distribution of mapped glycoproteins was
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mainly clustered in the extracellular region (Figure 2A), which was in accordance 9
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with the coevolution theory. In terms of molecular function (Figure 2B), the largest
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proportion of identified N-glycoproteins in DEW was involved in binding
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(GO:0005488), followed by catalytic activity (GO:0003824), which was performed by
188
a variety of enzymes. In this study, various glycosylated hydrolases, especially
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glycosylases, were identified in DEW (Table S1). Besides, the β-galactosidase in
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DEW were involved in some pathways as shown in Figure 3. It was shown that there
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was a greater variety of hydrolases found in DEW than in CEW, suggesting certain
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unique functions for waterfowl.25 It was reported that the N-linked glycans were
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required for the enzyme activity of β-glucosidase,26 which was related to the
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carbohydrate metabolic process. Therefore, the glycans of DEW glycosidases might
195
play an important role in stabilizing their enzymatic activities to release sugars for
196
meeting the energetic fuel during the embryo development.
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The N-glycoproteins of CEW were identified in our previous study.20 Here, the
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comparative GO analysis between DEW and CEW was performed. The distribution of
199
cellular component in DEW and CEW N-glycoproteins was similar (Figure 2A and
200
Figure S1A). A higher percentage (58%) of CEW N-glycoproteins were clustered into
201
the molecular function of binding compared with DEW (40%), while more DEW
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N-glycoproteins (35%) were enriched in catalytic activity compared with CEW (11%)
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(Figure 2B and Figure S1B). Major N-glycoproteins in DEW were associated with the
204
metabolic process and single-organism process while CEW glycoproteins were
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mainly distributed in biological regulation (Figure 2C and Figure S1C). A larger
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number of metabolic process-related glycoproteins were found in DEW (36%) than in
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CEW (8%). It was reported that the enzymatic efficiency could be modulated by the
208
glycoprotein N-glycans26, and the alteration of enzymatic efficiency might be related
209
to the higher energy demand for duck. 10
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The protein-protein interaction network was carried out on the interaction of
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N-glycoproteins in DEW (Figure 4A) and CEW (Figure 4B). The edges and nodes
212
represent the interaction of glycoproteins. The DEW glycoprotein interaction network
213
contained 21 predicted interactions involving 18 N-glycoproteins. Among these
214
interacted glycoproteins, some bore enzymatic activities, including A2M, PLG, OM,
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and A2ML1. The SPINK7 in CEW and SERPINB14 in DEW were both represented
216
as ovalbumin, but with 1 and 4 N-glycosite(s) identified respectively. The predicted
217
proteins interacted with DEW and CEW ovalbumin were also different. Whether and
218
how the diverse glycosylation affects the interaction among these glycoproteins
219
requires further study.
220
Characterization of the N-glycoproteome in DEW
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Through the comparison of DEW and CEW N-glycoproteoms (Figure 1D), fifteen
222
N-glycoproteins were conserved in these two species. Based on the GO analysis, these
223
conserved N-glycoproteins were involved in protein binding, localization and
224
regulating enzyme activity. There were 53 unique glycoproteins identified in DEW,
225
such as legumain, carboxypeptidase D precursor, and deleted in malignant brain
226
tumors 1 protein-like (DMBT1PL), which might be involved in the species-specific
227
properties or bioactivities. For instance, the glycosylation of immature legumain was
228
important on the localization and processing to its active form.27 And DMBT1PL, as a
229
specific glycoprotein in DEW, was presented with nine SRCR domains where the
230
glycans were identified to affect the innate immunity based on the ligand binding
231
properties.28 The glycosylation domains adjacent to SRCR domains harbor an
232
essential role in binding virus.29 Therefore, the carbohydrate moieties on DMBT1PL
233
might enhance the DEW antibacterial activity.
234
Antibacterial-related N-glycoproteins in DEW 11
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Considering that the duck eggshell from commercial hatcheries is mainly
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contaminated with Gram-positive cocci, it is probable that the cavity-nesting
237
environment may lead to more potent egg white antimicrobial activities to defend the
238
Gram-positive bacteria attacks.30,
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DEW, which could inhibit most gram-positive bacteria by hydrolyzing the
240
peptidoglycan cell wall.32 In addition, some proteins like OTF and riboflavin-binding
241
protein (RFBP) inhibit the bacteria by competitive binding with the bacteria-required
242
elements. For example, RFBP can eliminate free riboflavin in egg white and the
243
riboflavin binding activity may be decreased by deglycosylation.33
31
Lysozyme is a major antimicrobial protein in
244
In this study, nine N-glycosites were identified in DEW OTF but only three
245
glycosites were found in CEW.20 A comparative study suggested that the various of
246
OTF N-glycoforms between chicken and pheasant might influence the biofunctions
247
by changing the primary structure of OTF.34 According to the high sequence identity
248
between DEW and CEW OTF, the higher amount of N-glycosites in DEW OTF might
249
be the main reason for its variation in antimicrobial activity. Ghanbari et al. reported
250
that the glycans on the C-lobe of OTF might affect the layout of iron binding site
251
residue and subsequently affect the transferrin function.35 As shown in Fig 5, most of
252
the N-glycosites were concentrated on the Transferrin domain (PF00405) which
253
contained active sites showing ferric iron binding activity. Consequently, it could be
254
el suggested that these concentrated N-glycans may influence the dynamics of OTF
255
structures and subsequently affect the antibacterial activity.
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In DEW lysozyme, a total of 4 N-glycans were detected. All of the N-glycosites
257
were localized at the noncanonical motifs (NXC, NXR, NXD, NXE), which was
258
similar to those of CEW lysozyme.36 It was suggested that the nesting under humid
259
conditions might enhance the bacterial contamination and waterfowl might evolve 12
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higher antimicrobial activity.30,31 Additionally, the conjugation of polysaccharide and
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lysozyme could strengthen the protein surface activity to attack the bacteria which
262
contained hydrophobic material on the envelop, while the native lysozyme without
263
polysaccharide failed to lyse gram-negative bacteria.37 Thus, the different antibacterial
264
spectrum or activity between CEW and DEW may rely on the lysozyme carbohydrate
265
moieties, however this requires further study.
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In this study, 42 N-glycosites were detected in DEW Mucin-5B, which is a subunit
267
of ovomucin.38 Mucin-6, another submit of ovomucin, was identified with only one
268
N-glycosite. It was reported that the glycopeptides derived from CEW ovomucin
269
could prevent bacteria adhering to porcine erythrocytes.39 Other studies demonstrated
270
that the N-glycans also play a vital role in protein dimerization and polymerization,
271
which prevent egg white thinning during storage.40,41 Therefore, the relative higher
272
viscosity in DEW may be caused by the abundant N-glycosites of duck mucin-5B,
273
which can also enhance the antibacterial activity by limiting the bacteria movement.
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Allergy-related N-glycoproteins in DEW
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Among the 13 glycosites identified in DEW ovomucoid (OM), 5 of them (N7, N51,
276
N73, N156, and N173) with motif N-X-[S/T] (X≠P/proline) were canonical sites
277
while 8 were noncanonical sites (N11, N37, N45, N76, N102, N110, N164, and
278
N167). There was a controversy about whether the carbohydrate moieties are the
279
active fragment of antigenicity.42-44 Zhang et al. reported that the OM glycans had an
280
inhibitory effect on the protein binding properties to IgG and IgE,43 and another study
281
found that the N-linked glycan, especially the mannose chain on the OM domain III,
282
was shown to be related with the suppression of allergic response.44 Moreover, the
283
OM domain III was more related to allergenic than domain I and II.43 Many
284
N-glycosites were identified in the third domain of DEW OM, which might reduce the 13
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allergenicity. On the other hand, it was reported that the carbohydrate moieties were
286
responsible for an increased resistance to proteolysis and resulted in its allergenic
287
potency.45 It was reported that two specific IgE recognition epitopes in CEW OM
288
(DCSRFPNATDKE and FNPVCGTDGVTYDN) and the N-glycosites were both
289
identified in our former work.20,46 Here, the similar peptides (DCSRFPNTTNEE and
290
FSPVCGTDGYTYDN) were glycosylated in DEW, which might be related to its
291
allergenicity. Therefore, it may be speculated that the glycans on DEW OM can not
292
only prevent the IgE recognition epitopes from being degraded, but also affect the
293
protein steric hindrance. And the discrepancy of the glycosylated OM between duck
294
and chicken egg whites may contribute to their specific allergenicity.6,20
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Two independent N-glycosites and a pair of adjacent-glycosites were identified in
296
duck RFBP (Table S1). It was reported that the secondary and tertiary structure of
297
RFBP could be affected by its carbohydrate moieties.47 Besides, a study on the effects
298
of the adjacent serine O-glycosylation showed that the clustered carbohydrates shifted
299
the conformational equilibrium as well as the target binding sites.48 Moreover, the
300
carbohydrate moieties, especially the sialic acid, were essential for protein transport
301
and biological functions.33 Thus, it could be postulated that the adjacent-glycosites on
302
duck RFBP might affect the IgE binding activity by changing the protein structure.
303
Lysozyme is also recognized to be associated with allergies. The specific
304
glycosylation of hen egg lysozyme could result in the steric hindrance on protein
305
interfacial region and subsequently, reduce the antigenicity dramatically.49 Moreover,
306
OVA, as one of the most studied allergenic proteins, was identified with 4
307
N-glycosites in DEW. It has been demonstrated that the deglycosylation of OVA
308
N-terminal glycan decreased the allergenicity and antigenicity.5 It was reported that
309
the glycation by Maillard reaction could influence the allergenicity of ovalbumin, 14
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which could contribute to the alteration of the resistance to digestive enzymes.50 Thus,
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the difference of OVA carbohydrate moieties between DEW and CEW might also
312
contribute to the alteration of species-specific allergenicity, which demands further
313
investigation.
314
To conclude, the N-glycoproteome of DEW was investigated and compared to
315
CEW with bioinformatics analysis in this study. In total, 231 N-glycosites on 68
316
glycoproteins were identified in DEW. According to the restriction of trypsin
317
digestion strategy, however, some N-glycosites might still be undetected, which needs
318
further analysis by using combination of different enzymes. Meanwhile, the
319
identification of N-glycosite information might also be interfered by the simultaneous
320
existence of O-glycans. GO functional annotations of the N-glycoproteins in DEW
321
and CEW revealed their variations in biological functions. The comparison of
322
glycosites between CEW and DEW N-glycoproteins elicited difference in the
323
allergenicity as well as antibacterial activity. The divergence of these glycoprotein
324
homologues was suggested to be evolved with the adaption to various environmental
325
stresses, such as the need for defending against infections. Meanwhile, the
326
N-glycosites variations between DEW and CEW proteins may be related to the
327
poultry domestication process, which provided new insight into the poultry
328
evolutionary history.
329 330
Abbreviations Used
331
DEW, duck egg white; CEW, chicken egg white; HILIC, Hydrophilic interaction
332
liquid chromatography; GO, Gene Ontology; DMBT1PL, Deleted in malignant brain
333
tumors 1; OTF, Ovotransferrin; RFBP, Riboflavin-binding protein; OM, Ovomucoid;
334
OVA, Ovalbumin. 15
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Funding
336
This work was financially supported by the Chinese National Natural Science Funds
337
(Grant No. 31772043), Fundamental Research Funds for the Central Universities
338
(Program No. 2662018JC021 & Project No. 2019BC008), Co-construction Research
339
and Development Project of Hubei University of Arts & Science (Project No.
340
F51805).
341
Conflicts of interest
342
The authors declare no competing financial interests.
343
Supporting Information
344
The details of DEW N-glycopeptides resulting from a database search of LC-MS/MS
345
data are shown in Supporting Table (Table S1); Gene Ontology analysis (level 2) of
346
the N-glycoproteins in CEW are shown in Supporting Figure (Figure S1, the list of
347
CEW N-glycoproteins was from the previous work20); The HPLC separation data and
348
the basis of components classifications are shown in the Supporting file (Figure S2, A.
349
The HPLC separation chromatogram data of trypsin digested protein mixtures. B.
350
Illustration of the 60 components separated into 4 fractions); The chromatograms of
351
the LC-MS/MS analysis of trypsin digests DEW glycoproteins are shown in the
352
Supporting file (Supporting Figures).
353
References
354
1.
355
protein-fold stability. Structure. 1999, 7, 155-160.
356
2.
357
672-676.
Wormald, M. R.; Dwek, R. A. Glycoproteins: glycan presentation and
Hart, G. W.; Copeland, R. J. Glycomics hits the big time. Cell 2010, 143,
16
ACS Paragon Plus Environment
Page 16 of 37
Page 17 of 37
Journal of Agricultural and Food Chemistry
358
3.
Quan, T. H.; Benjakul, S. Quality, protease inhibitor and gelling property of duck
359
egg albumen as affected by storage conditions. J. Food Sci. Technol. 2018, 55,
360
513-522.
361
4.
362
ovomucin. Int. J. Biol. Macromol. 2014, 70, 230-235.
363
5.
364
antigenicity
365
N-acetylglucosaminidase. Food Chem. 2016, 217, 342-345.
366
6.
367
Duck egg allergy in an adult patient without allergy to chicken egg. J Investig Allergol
368
Clin Immunol. 2019, 29, 245-246.
369
7.
Zeuner, F. E. A history of domesticated animals. J. Anim Ecol. 1963, 33, 215.
370
8.
Quan, T. H.; Benjakul, S. Duck egg albumen: physicochemical and functional
371
properties as affected by storage and processing. J. Food Sci. Technol. 2019, 56,
372
1104-1115.
373
9.
374
cystatin from duck egg white. Acta Biochim. Pol. 1995, 42, 351-356.
375
10.
376
Arch. Gefluegelkd. 1998, 62, 72-82.
377
11.
378
18-Antimicrobial activity of duck egg lysozyme against almonella enteritidis. Global
379
Issues in Food Science & Technology 2009, 293-307.
Shan, Y.; Xu, Q.; Ma, M. Mg 2+ binding affects the structure and activity of
Park, H. Y.; Yoon, T. J.; Kim, H. H.; Han Y. S.; Choi, H. D. Changes in the and
allergenicity
of
ovalbumin
in
chicken
egg
white
by
Alcántara, V. M.; Palacios, C. L.; Anaya, A. S.; Bustamante, O. L.; Jimeno, N. L.
Warwas, M.; Gburek, J.; Osada, J.; Golab, K. Purification and characterization of
Pikul, J. Characteristics of duck eggs and the quality of duck eggs products.
Naknukool,
S.;
Hayakawa,
S.;
Uno,
T.;
17
ACS Paragon Plus Environment
Ogawa,
M. CHAPTER
Journal of Agricultural and Food Chemistry
380
12.
Geng, F.; Huang, X.; Kaustav, M.; Zhu, Z.; Cai, Z.; Ma, M. Mass spectrometry
381
and two-dimensional electrophoresis to characterize the glycosylation of hen egg
382
white ovomacroglobulin. J Agric Food Chem. 2015, 63, 8209-8215.
383
13.
384
comparative proteomic study of quail and duck egg white protein using 2-dimensional
385
gel electrophoresis and matrix-assisted laser desorption/ionization time-of-flight
386
tandem mass spectrometry analysis. Poult. Sci. 2016, 95, 1137-1144.
387
14.
388
glycan diversity and evolutionary lineage based on comparative Avio-N-glycomics
389
and sialic acid analysis of 88 egg whites of Galloanserae. Biochem. 2011, 50,
390
4757-4774.
391
15.
392
Y. Distribution of the Galβ1-4Gal epitope among birds: species-specific loss of the
393
glycan structure in chicken and its relatives. Plos One 2013, 8, e59291.
394
16.
395
Reveals Diverse N-glycan Expression in Quail Species. J Agric Food Chem. 2019, 67,
396
531-540.
397
17.
398
Characterization and comparison of whey N-glycoproteomes from human and bovine
399
colostrum and mature milk. Food Chem 2019, 276, 266-273.
400
18.
401
Meng, L.; Wu, B.; Li, J. In-Depth N-Glycosylation Reveals Species-Specific
Hu, S.; Qiu, N.; Liu, Y.; Zhao, H.; Gao, D.; Sun, R.; Ma, M. Identification and
Kazuko, H.; Maho, A.; Ryo, H.; Chuan, L. Y.; Shin-Ichiro, N. Insight into
Noriko, S.; Daisuke, N.; Tseng-Hsiung, S.; Chia-Wei, L.; Kay-Hooi, K.; Kazuo,
Sanes, J.T.; Hinou, H.; Lee, Y.C.; Nishimura, S.I. Glycoblotting of Egg White
Cao, X.; Yang, M.; Yang, N.; Liang, X.; Tao, D.; Liu, B.; Wu, J.; Yue, X.
Mao, F.; Yu, F.; Bin, H.; Xiang, X.; Pei, F.; Yue, H.; Qi, Y.; Han, H.; Huo, X.;
18
ACS Paragon Plus Environment
Page 18 of 37
Page 19 of 37
Journal of Agricultural and Food Chemistry
402
Modifications and Functions of the Royal Jelly Protein from Western (Apis mellifera)
403
and Eastern Honeybees (Apis cerana). J Proteome Res 2015, 14, 5327-5240.
404
19.
405
Analysis of Chicken Egg Yolk. J Agric Food Chem. 2018, 66, 11510-11516.
406
20.
407
Chicken Egg White Proteins Using an Omics Strategy. J Agric Food Chem. 2017, 65,
408
5357-5364.
409
21.
410
preparation method for proteome analysis. Nat. Methods 2009, 6, 359-362.
411
22.
412
Mechref, Y. HILIC and ERLIC Enrichment of Glycopeptides Derived from Breast
413
and Brain Cancer Cells. J. Proteome Res. 2016, 15, 3624-3634.
414
23.
415
L.; Qi, Z.; Yueyuan, Z.; Yong, Z. IBS: an illustrator for the presentation and
416
visualization of biological sequences. Bioinformatics 2015, 31, 3359-3361.
417
24.
418
N-Glycosylation Sites across Seven Evolutionarily Distant Species Reveals a
419
Divergent Substrate Proteome Despite a Common Core Machinery. Mol. Cell 2012,
420
46, 542-548.
421
25.
422
Albumen from Domestic Chicken, Duck, Goose, Turkey, Quail and Pigeon.
423
Proteomics 2017, 17, 1700145.
Geng, F.; Xie, Y.; Wang, J.; Majumder, K.; Qiu, N.; Ma, M. N-Glycoproteomic
Geng, F.; Wang, J.; Liu, D.; Jin, Y.; Ma, M. Identification of N-Glycosites in
Wisniewski, J.; Zougman, A.; Nagaraj, N.; Mann, M. Universal sample
Zacharias, L. G.; Hartmann, A. K.; Song, E.; Zhao, J.; Zhu, R.; Mirzaei, P.;
Wenzhong, L.; Yubin, X.; Jiyong, M.; Xiaotong, L.; Peng, N.; Zhixiang, Z.; Urs,
Zielinska, D.; Gnad, F.; Schropp, K.; Wiśniewski, J. Mann, M., Mapping
Sun, C.; Liu, J.; Li, W.; Xu, G.; Yang, N. Divergent Proteome Patterns of Egg
19
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
424
26.
Boudabbous, M.; Hmad, I. B.; Saibi, W.; Mssawra, M.; Belghith, H.; Gargouri,
425
A. Trans-glycosylation capacity of a highly glycosylated multispecific β-glucosidase
426
from Fusarium solani. Bioprocess Biosyst Eng 2017, 40, 559-571.
427
27.
428
Tripti, T.; Klaudia, B.; Maelandsmo, G. M.; Kjersti, F. High expression of the
429
cysteine proteinase legumain in colorectal cancer-implications for therapeutic
430
targeting. Eur. J. Cancer 2015, 51, 9-17.
431
28.
432
Salivary agglutinin/glycoprotein-340/DMBT1: a single molecule with variable
433
composition and with different functions in infection, inflammation and cancer. Biol.
434
Chem. 2007, 388, 1275-1289.
435
29.
436
tumors-1 protein (DMBT1): a pattern recognition receptor with multiple binding sites.
437
Int. J. Mol. Sci. 2010, 11, 5212-5233.
438
30.
439
Anseriform outer eggshell and cuticle. Comp. Biochem. Physiol., Part B: Biochem.
440
Mol. Biol. 2008, 149, 640-649.
441
31.
442
activity of avian egg white protein extracts. Br. Poult. Sci. 2008, 49, 125-132.
443
32.
444
Comparison of bactericidal activity of six lysozymes at atmospheric pressure and
445
under high hydrostatic pressure. Int. J. Food Microbiol. 2006, 108, 355-363.
Haugen, M. H.; Kjetil, B.; Jahn Martin, N.; Pettersen, S. J.; Eivind Valen, E.;
Ligtenberg, A. J. M.; Veerman, E. C. I.; Amerongen, A. V., Nieuw; Jan, M.
Ligtenberg, A. J.; Karlsson, N. G.; Veerman, E. C. Deleted in malignant brain
Wellman-Labadie, O.; Picman, J.; Hincke, M. T. Antimicrobial activity of the
Wellman-Labadie, O.; Picman, J.; Hincke, M. T. Comparative antibacterial
Dorothy, N.; Barbara, M.; Miroslava, A.; Abebetch, Z. B.; Michiels, C. W.
20
ACS Paragon Plus Environment
Page 20 of 37
Page 21 of 37
Journal of Agricultural and Food Chemistry
446
33.
Miller, M. S.; Buss, E. G.; Clagett, C. O. The role of oligosaccharide in transport
447
of egg yolk riboflavin-binding protein to the egg. Biochim. Biophys. Acta 1981, 677,
448
225-233.
449
34.
450
Comparison of Chicken and Pheasant Ovotransferrin N-Glycoforms via Electrospray
451
Ionization Mass Spectrometry and Liquid Chromatography Coupled with Mass
452
Spectrometry. J Agric Food Chem 2014, 62, 7245-7254.
453
35.
454
of glycosylation on the transferrin structure: A molecular dynamic simulation
455
analysis. J. Theor. Biol. 2016, 404, 73-81.
456
36.
457
N-linked Glycosylation in Hen Egg White Lysozyme Is Localized at Nonconsensus
458
Sites. J. Proteome Res. 2015, 14, 2633-2641.
459
37.
460
Dextran-Conjugated Lysozyme against Escherichia coli and Staphylococcus aureus in
461
Cheese Curd. J Food Prot 2008, 71, 411-415.
462
38.
463
ovomucin. Biochem. J. 1971, 121, 537−547.
464
39.
465
Glycopeptides from Egg Protein Ovomucin with Anti-Agglutinating Activity against
466
Porcine K88 Enterotoxigenic Escherichia coli Strains. J Agric Food Chem. 2017, 3,
467
1521-1531.
Jiang, K.; Wang, C.; Sun, Y.; Liu, Y.; Zhang, Y.; Huang, L.; Wang, Z.
Ghanbari, Z.; Housaindokht, M. R.; Bozorgmehr, M. R.; Izadyar, M. The effect
Arndt, A.; Kristina, M.; Christian, A.; Laura, M.; Odra, P. Low Abundant
Amiri, S.; Ramezani, R.; Aminlari, M. Antibacterial Activity of
Robinson, D. S.; Monsey, J. B. Studies on the composition of egg white
Sun, X.; Michael, G. Gänzle.; Wu, J. Identification and Characterization of
21
ACS Paragon Plus Environment
Journal of Agricultural and Food Chemistry
468
40.
Bell, S. L.; Gongqiao, X.; Khatri, I. A.; Rongquan, W.; Sameera, R.; Forstner, J.
469
F. N-linked oligosaccharides play a role in disulphide-dependent dimerization of
470
intestinal mucin Muc2. Biochem. J. 2003, 373, 893-900.
471
41.
472
aggregated and disaggregated ovomucin during egg white thinning. J Agric Food
473
Chem 1981, 29, 821-823.
474
42.
475
IgE binding of native and deglycosylated ovomucoid. Food Agric Immunol 1997, 9,
476
277-288.
477
43.
478
using egg-white-allergic patients' sera. Biochem. Biophys. Res. Commun. 1998, 253,
479
124-127.
480
44.
481
domain can modulate Immunoglobulin E antibody production and cytokine response
482
in BALB/c mice. Clin. Exp. Allergy 2010, 37, 918-928.
483
45.
484
Influence of the carbohydrate moieties on the immunoreactivity and digestibility of
485
the egg allergen ovomucoid. PLoS One 2013, 8, e80810.
486
46.
487
Gomez-Coronado, D.; de Dios, V.; Terrados, S.; de la Hoz, B. Mapping of the IgE
488
and IgG4 sequential epitopes of ovomucoid with a peptide microarray immunoassay.
489
Int. Arch. Allergy Immunol. 2013, 161, 11-20.
Kato, A.; Ogata, S.; Matsudomi, N.; Kobayashi, K. Comparative study of
Besler, M.; Steinhart, H.; Paschke, A. Allergenicity of hen’s egg‐white proteins:
Zhang, J. W.; Mine, Y. Characterization of IgE and IgG epitopes on ovomucoid
Rupa, P.; Nakamura, S.; Mine, Y. Genetically glycosylated ovomucoid third
Benede, S.; Lopez-Fandino, R.; Reche, M.; Molina, E.; Lopez-Exposito, I.
Martinez-Botas, J.; Cerecedo, I.; Zamora, J.; Vlaicu, C.; Dieguez, M. C.;
22
ACS Paragon Plus Environment
Page 22 of 37
Page 23 of 37
Journal of Agricultural and Food Chemistry
490
47.
Rohrer, J. S.; Rd, W. H. Separation and characterization of the two Asn-linked
491
glycosylation sites of chicken serum riboflavin-binding protein. Glycosylation
492
differences despite similarity of primary structure. Biochem. J. 1992, 285, 275-280.
493
48.
494
Glycosylations versus conformational preferences of cancer associated mucin core.
495
Glycoconjugate J. 2000, 17, 835-848.
496
49.
497
antigenicity of hen egg lysozyme by site-specific glycosylation. FEBS Lett. 2004, 557,
498
169-173.
499
50.
500
immunoglobulin E (IgE) binding to heated and glycated ovalbumin and ovomucoid
501
before and after in vitro digestion. J Agric Food Chem. 2011, 59, 10044-10051.
Schuman, J.; Qiu, D.; Koganty, R. R.; Longenecker, B. M.; Campbell, A. P.
Usui, M.; Shimizu, T.; Goto, Y.; Saito, A.; Kato, A. Effective reduction of
Jiménez-Saiz, R.; Belloque, J.; Molina, E.; López-Fandiño, R. Human
23
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Journal of Agricultural and Food Chemistry
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Figure Captions
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Figure 1. Characteristics of the identified duck N-glycoproteins. A. Mass error
504
distribution of identified DEW N-glycopeptides. B. Distribution of single and
505
multiple DEW N-glycoproteins. C. Distribution of recognized sequence motifs in
506
DEW N-glycoproteins. D. Venn diagrams of identified N-glycoproteins between duck
507
and chicken egg whites (the list of CEW N-glycoproteins was from the previous
508
work20).
509 510
Figure 2. Gene Ontology (GO) analysis (level 2) of the N-glycoproteins in DEW.
511 512
Figure 3. Duck egg white glycoproteins involved in the glycan degradation KEGG
513
pathway. Red lines denote the severable glycosyl bonds.
514 515
Figure 4. Protein-protein interaction network analysis of the N-glycoproteins in duck
516
egg white (A) and chicken egg white (B, the list of CEW N-glycoproteins was from
517
the previous work20). Disconnected nodes are hidden.
518 519
Figure 5. Locations of the identified N-glycosites on DEW ovotransferrin.
520 521
Figure S1. Gene Ontology analysis (level 2) of the N-glycoproteins in CEW (the list
522
of CEW N-glycoproteins was from the previous work20).
523 24
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Figure S2. The HPLC separation data and the basis of components classifications
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(Figure S2, A. The HPLC separation chromatogram data of trypsin digested protein
526
mixtures. B. Illustration of the 60 components separated into 4 fractions).
527 528
Supporting Figures. The chromatograms of the LC-MS/MS analysis of trypsin
529
digests DEW glycoproteins
530 531
Table S1. The details of DEW N-glycopeptides resulting from a database search of
532
LC-MS/MS data.
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Figure graphics
534 535
Figure 1. Characteristics of the identified duck N-glycoproteins. A. Mass error
536
distribution of identified DEW N-glycopeptides. B. Distribution of single and
537
multiple DEW N-glycoproteins. C. Distribution of recognized sequence motifs in
538
DEW N-glycoproteins. D. Venn diagrams of identified N-glycoproteins between duck
539
and chicken egg whites (the list of CEW N-glycoproteins was from the previous
540
work20).
541
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Figure 2. Gene Ontology (GO) analysis (level 2) of the N-glycoproteins in DEW.
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Figure 3. Duck egg white glycoproteins involved in the glycan degradation KEGG
546
pathway. Red lines denote the severable glycosyl bonds.
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Figure 4. Protein-protein interaction network analysis of the N-glycoproteins in duck
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egg white (A) and chicken egg white (B, the list of CEW N-glycoproteins was from
550
the previous work20). Disconnected nodes are hidden.
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Figure 5. Locations of the identified N-glycosites on DEW ovotransferrin.
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Figure 1. Characteristics of the identified duck N-glycoproteins. A. Mass error distribution of identified DEW N-glycopeptides. B. Distribution of single and multiple DEW N-glycoproteins. C. Distribution of recognized sequence motifs in DEW N-glycoproteins. D. Venn diagrams of identified N-glycoproteins between duck and chicken egg whites (the list of CEW N-glycoproteins was from the previous work22). 312x245mm (300 x 300 DPI)
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Figure 2. Gene Ontology (GO) analysis (level 2) of the N-glycoproteins in DEW. 498x193mm (300 x 300 DPI)
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Figure 3. Duck egg white glycoproteins involved in the glycan degradation KEGG pathway. Red lines denote the severable glycosyl bonds. 546x347mm (300 x 300 DPI)
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Figure 4. Protein-protein interaction network analysis of the N-glycoproteins in duck egg white (A) and chicken egg white (B, the list of CEW N-glycoproteins was from the previous work22). Disconnected nodes are hidden. 501x216mm (300 x 300 DPI)
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Figure 5. Locations of the identified N-glycosites on DEW ovotransferrin. 49x23mm (300 x 300 DPI)
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