| Literature DB >> 16689994 |
Rafael A P Guércio1, Anna Shevchenko, Andrej Shevchenko, Jorge L López-Lozano, Jaime Paba, Marcelo V Sousa, Carlos A O Ricart.
Abstract
BACKGROUND: Bothrops atrox is responsible for the majority of snakebite accidents in the Brazilian Amazon region. Previous studies have demonstrated that the biological and pharmacological activities of B. atrox venom alter with the age of the animal. Here, we present a comparative proteome analysis of B. atrox venom collected from specimens of three different stages of maturation: juveniles, sub-adults and adults.Entities:
Year: 2006 PMID: 16689994 PMCID: PMC1483819 DOI: 10.1186/1477-5956-4-11
Source DB: PubMed Journal: Proteome Sci ISSN: 1477-5956 Impact factor: 2.480
Figure 1Proteome maps of B. atrox venom from juveniles, sub-adults and adults. Spots displaying similar peptide mass fingerprints were grouped as explained in Results section. A summary of the protein classes identified in each group is also shown.
Protein groups identified in B. atrox venom proteome. Groups from A to Δ comprise spots that displayed similar peptide mass fingerprints shown in Fig 3. pI range, molecular mass (MM) and relative expression were determined by computational analyses of the 2-DE gels. X: unknown amino acid; B: cleavage site; J: juveniles; S: sub-adults, A: adults.
| Group | Protein Class | Best Match sptrembl # Organism | Peptide sequences | p | MM (kDa) | Relative expression |
| A | Metalloproteinase | Bothropasin | BITVKPDVDYTLNSFAEWR | 5.0 | 52 | J = S = A |
| B | L-amino | L-amino oxidase I | BXXGQLYEESLQK | 5.9 –6.2 | 55 – 61 | J = S = A |
| C | Metalloproteinase | Bothropasin | BXXVEVGEECDCGSPR | 7.1–7.5 | 40 – 51 | J>S>A |
| D | Metalloproteinase | Metalloproteinase | BTLDSFGEWR-BTLDSFEGWR | 5.3 – 6.4 | 23–24 | J<S<A |
| E | Serine proteinase | Bilineobin | BVVGGDECNINEHR | 6.3 –6.4 | 28 – 29 | J = S = A |
| F | CRISP | Ablomin | BSVNPTASNMLK | 7.1 –8.1 | 28 – 29 | J>S = A |
| G | Phospholipase A2 | Phospholipase A2 | BVAVLCFR | 8.1 | 16 | J = S = A |
| H | C-type lectin | Botrocetin β chain | BDCPSGWSSYEGSCYK | 4.8 | 17 | J = S<A |
| I | C-type lectin | Botrocetin α chain | BDCPSGWSSYEGNCYK | 5.3 | 15 | J = S<A |
| J | Phospholipase A2 | Myotoxin I | BAAAVCFR | 7.8 | 17 | J = S<A |
| K | Phospholipase A2 | Myotoxin III | BXXVCDENNPCLK | 7.8 | 17 | J = S<A |
| L | Metalloproteinase | Berythractivase | BLTPGSQCADGLCCDQCR | 5.0 –5.9 | 61 – 66 | J>S>A |
| M | Metalloproteinase | BOJUMET II | BETVLLNR | 5.4 –5.7 | 51–53 | J>S>A |
| N | Serine proteinase | Serine proteinase | BLVGGDECNINEHR | 5.0 –5.3 | 29 – 30 | J>S = A |
| O | Metalloproteinase | Metalloproteinase | BYIELVIVADHR | 5.2 –5.4 | 36 – 37 | J>S>A |
| P | Metalloproteinase | Factor X activator | BLYETVNALNVLCR | 5.8 –6.2 | 38 – 40 | J>S>A |
| Q | Serine proteinase | Serine proteinase | BFLAFLYPGR | 6.3 –7.4 | 32 – 34 | J = S>A |
| R | Serine proteinase | Catroxase II | BLDDVLDQDLG | 6.5 | 29 | J = S>A |
| S | C-type lectin | Alboaggregin A | WADAER | 4.8 | 17 | J>S = A |
| T | C-type lectin | Mucrocetin | BDCPSGWSSYEGSCYK | 4.8 | 15 | J = S>A |
| U | C-type lectin | Alboagregrina A | BDCPSDWSSYEGHCYR | 5.1–5.4 | 14 | J = S>A |
| V | C-type lectin | Bothrocetin α chain | BCFVLER | 5.1–5.4 | 14 | J = S>A |
| X | VEGF | Vascular Endothelial | CCTDESLECTATGK | 5.6 –6.3 | 13 | J>S>A |
| W | C-type lectin | Botrocetin α chain | BDCPSGWSSYEGHCYR | 5.9 –6.4 | 15 | J = S>A |
| Y | Phospholipase A2 | Phospholipase A2 | BYFSYGCYCGLGGLGQPR-GSYGCYCLGGL | 6.7 | 15 | J = S>A |
| Z | C-type lectin | Platelet glycoprotein | BQYFFETK | 7.8 | 17 | J = S>A |
| Δ | Phospholipase A2 | Myotoxin III | BSYAAYGCNCGVLGR | 6.4 –8.1 | 16 | J = S>A |
Figure 2MS BLAST identification of a spot from group Y. Panel A: nanoES mass spectrum of the unseparated in-gel tryptic digest. Peaks of trypsin autolysis products are designated with "T". Peptide precursor ions, whose tandem mass spectra were acquired and interpreted are designated with corresponding m/z and charge (in parenthesis). Panel B: MS/MS spectrum of the precursor ion with m/z 744.77 (designated with asterisk in panel A). De novo sequencing was performed by considering mass differences between the adjacent peaks in the series of fragments that belong to the ions containing C-terminal amino acid residue (y-ions), starting from high m/z region of the spectrum. The sequence shown in the panel was deduced by considering the most abundant fragment ions and was not necessarily correct; a few optional variants of interpretations based on the low abundant fragments and arriving to the typical tryptic C-terminus (K) were possible. All sequence candidates for used in a single MS BLAST search. Panel C: MS BLAST query that comprises all sequence proposals obtained by the interpretation of all tandem mass spectra were assembled in an arbitrary order and spaced by a minus (gap) symbol. B stands for a generic trypsin cleavage site (R or K) preceding peptide sequences and is introduced if it was possible to read out the sequence until the very N-terminus of the peptide. Panel D: The top confident hit of MS BLAST search. The search also reported a few homologous proteins from other species.
Figure 3Zoomed gels showing examples of differential expression of proteins of groups D and C upon ontogenetic development.