| Literature DB >> 24302979 |
Cristina Escrevente1, Nicolas Grammel, Sebastian Kandzia, Johannes Zeiser, Erin M Tranfield, Harald S Conradt, Júlia Costa.
Abstract
Exosomes consist of vesicles that are secreted by several human cells, including tumor cells and neurons, and they are found in several biological fluids. Exosomes have characteristic protein and lipid composition, however, the results concerning glycoprotein composition and glycosylation are scarce. Here, protein glycosylation of exosomes from ovarian carcinoma SKOV3 cells has been studied by lectin blotting, NP-HPLC analysis of 2-aminobenzamide labeled glycans and mass spectrometry. An abundant sialoglycoprotein was found enriched in exosomes and it was identified by peptide mass fingerprinting and immunoblot as the galectin-3-binding protein (LGALS3BP). Exosomes were found to contain predominantly complex glycans of the di-, tri-, and tetraantennary type with or without proximal fucose and also high mannose glycans. Diantennary glycans containing bisecting N-acetylglucosamine were also detected. This work provides detailed information about glycoprotein and N-glycan composition of exosomes from ovarian cancer cells, furthermore it opens novel perspectives to further explore the functional role of glycans in the biology of exosomes.Entities:
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Year: 2013 PMID: 24302979 PMCID: PMC3840218 DOI: 10.1371/journal.pone.0078631
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Glycoproteins from membrane fractions of SKOV3 cells.
A. Lectin blotting of glycoproteins from cell extract (Ext), microsomal fraction (MF), plasma membrane (PM), intracellular fraction (IC) that consisted of non-biotinylated proteins, cytoplasmic fraction (Cyt) that consisted of the supernatant of the microsomal fraction and crude exosomes (Exosc) were analysed. Three μg total protein were applied per lane. Detection was performed using the chemiluminescent method. * Correspond to most abundant sialoglycoproteins enriched in the exosomes. Results were representative of at least two independent experiments. B. SDS-PAGE analysis of vesicle proteins from SKOV3 cells for peptide mass fingerprinting. A. MAL-binding glycoproteins (bands 1 to 21 identified in Table ) and total vesicles proteins (bands a to j were identified in Table ). Detection was with Coomassie G-250.
Identification of MAL-binding glycoproteins based on peptide mass fingerprinting.
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| MAL-lectin | ||||||
| 1 | laminin, alpha 5, isoform CRA_c | gi|119595780 | 411358 | 24 | 7 | + |
| 2 | laminin B2 chain | gi|186964 | 183195 | 14 | 9 | + |
| 3 | unnamed protein product | gi|37138 | 133321 | 8 | 7 | - |
| 4 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 12 | 24 | + |
| 5 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 25 | 40 | + |
| 6 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 27 | 40 | + |
| 7 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 15 | 27 | + |
| 8 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 13 | 25 | + |
| 9 | bovine albumin | gi|74267962 | 71186 | 52 | 53 | + |
| 10 | galectin-3-binding protein precursor | gi|5031863 | 66202 | 7 | 12 | + |
| 11 | pyruvate kinase | gi|35505 | 58411 | 7 | 16 | + |
| 12 | cathepsin D preproprotein | gi|4503143 | 45037 | 16 | 40 | + |
| 13 | mutant beta-actin (beta'-actin) | gi|28336 | 42128 | 13 | 31 | + |
| 14 | annexin A2 isoform 2 | gi|4757756 | 38808 | 19 | 58 | + |
| 15 | annexin A1 | gi|4502101 | 38918 | 8 | 27 | + |
| 16 | L-lactate dehydrogenase A chain isoform 1 | gi|5031857 | 36950 | 9 | 21 | + |
| 17 | annexin A1 | gi|4502101 | 38918 | 8 | 23 | + |
| 18 | syntenin | gi|2795863 | 32568 | 11 | 30 | + |
| 19 | proteasome subunit alpha type-2 | gi|4506181 | 25996 | 6 | 34 | + |
| 20 | prosome beta-subunit | gi|551547 | 25950 | 3 | 12 | + |
| 21 | macropain subunit delta | gi|296734 | 19590 | 4 | 16 | + |
| Exosc | ||||||
| a | bovine albumin | gi|74267962 | 71186 | 51 | 57 | + |
| b | histone macroH2A1.2 | gi|3493529 | 39748 | 10 | 37 | + |
| c | annexin A2 | gi|56967118 | 38808 | 22 | 64 | + |
| d | histone H1b | gi|356168 | 21721 | 13 | 38 | + |
| e | histone H1.2 | gi|4885375 | 21352 | 12 | 36 | - |
| f | keratin, type II cytoskeletal 2 epidermal | gi|47132620 | 65678 | 14 | 25 | - |
| g | histone H2B | gi|1568551 | 13928 | 15 | 81 | - |
| h | histone H2B type 1-H | gi|4504269 | 13884 | 16 | 81 | - |
| i | histone H2A type 1-C | gi|4504245 | 14097 | 12 | 53 | + |
| j | nucleosome core particle | gi|347447327 | 11641 | 14 | 78 | + |
Figure 2Characterization of exosomes obtained from SKOV3 cell supernatants.
A) Immunoblotting of LGALS3BP in purified exosomes and plasma membrane. SKOV3 cell extracts (Ext), crude exosomes (Exosc), biotinylated plasma membrane proteins (PM), and fractions from the sucrose gradient used for Exosc fractionation (F1, F2-5, purified exosomes, F6-7, F8-11 and F12). Three µg protein were applied per lane with the exception of F1, F6-7 and F12, where 20% of the amount obtained from the sucrose gradient was used. Detection was by the chemiluminescent method. Results were representative of two independent experiments. B) Electron microscopy visualization of crude exosomes (pellet collected after centrifugation at 100,000xg of pre-cleared supernatant). C) Electron microscopy visualization of purified exosomes (fractions 2 to 5 of sucrose gradient). Arrows, cup-shaped vesicles; open arrowhead, vesicles larger than 100 nm; closed arrowheads, vesicles approximately from 30 to 50 nm. The scale bar corresponds to 100 nm.
Figure 3NP-HPLC analysis of 2-AB labeled N-glycans from purified exosomes.
N-glycans were digested with mannosidase (M), sialidase (S), galactosidase (G) and fucosidase (F) as indicated. M5 to M9 consist of high mannose glycans Man5GlcNAc2 to Man9GlcNAc2, respectively. Structures of components from peaks 1 to 10 were identified by comparison with retention times of standards (Figure S1, Table S1) and after digestion with exoglycosidases.
Figure 4MALDI-TOF MS analysis of desialylated N-glycans from purified exosomes of SKOV3 cells.
The m/z values of the first detected isotopic mass for major peaks are shown. Proposed compositions and compatible structures are presented in Table .
Observed mass signals (m/z) by MALDI-TOF MS analysis and proposed composition of the N-glycans from exosomes.
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| 1257.5 (1257.5) | Hex5HexNAc2 | M5 | M5 |
| 1419.6 (1419.5) | Hex6HexNAc2 | M6 | M6 |
| 1581.7 (1581.5) | Hex7HexNAc2 | M7 | M7 |
| 1646.6 (1647.6) | dHex1Hex4HexNAc4 | FA2G1 | - |
| 1663.7 (1663.6) | Hex5HexNAc4 | A2G2 | 4 |
| 1743.8 (1743.6) | Hex8HexNAc2 | M8 | M8 |
| 1809.8 (1809.7) | dHex1Hex5HexNAc4 | FA2G2 | 5 |
| 1850.7 (1850.7) | dHex1Hex4HexNAc5 | FA3G1, FA2BG1 | - |
| 1906.8 (1905.6) | Hex9HexNAc2 | M9 | M9 |
| 2012.9 (2012.7) | dHex1Hex5HexNAc5 | FA3G2, FA2BG2 | 7, 6 |
| 2028.8 (2028.7) | Hex6HexNAc5 | A3G3 | 8 |
| 2174.9 (2174.8) | dHex1Hex6HexNAc5 | FA3G3 | 9 |
| 2215.8 (2215.8) | dHex1Hex5HexNAc6 | FA4G2, FA3BG2 | - |
| 2377.9 (2377.9) | dHex1Hex6HexNAc6 | FA4G3 | - |
| 2539.9 (2539.9) | dHex1Hex7HexNAc6 | FA4G4 | 10 |
| 2742.9 (2743.0) | dHex1Hex7HexNAc7 | FA4G4GlcNAc | - |
Theoretical monoisotopic masses of the proposed glycan structures [M + Na]+ are shown in parenthesis. HexNAc: N-acetylhexosamine; dHex: deoxyhexose; Hex: hexose.
N-glycans have two core N-acetylglucosamine (GlcNAc); Mx, x represents the number of mannose (Man) on core GlcNAc; F at the start represents α1,6-linked core fucose (Fuc); A2, biantennary; A3, triantennary; A4, tetraantennary; B, bisecting GlcNAc; Gx, x represents number of galactose (Gal) [3];G1 or [6]G1 represents that Gal is on the α1,3 or α1,6 mannose; Sx (3,6), x represents number of sialic acids linked to Gal, the numbers in parentheses represent α2,3 or α2,6 linkage.
These mass signals have been detected from independent preparations of purified exosomes (spectrum shown in Figure 4) and crude exosomes (data not shown). Compatible structures considering the N-glycan biosynthetic pathway are shown. The structures identified by NP-HPLC (Figure 3) are indicated.