| Literature DB >> 22870282 |
Nathalie T Pham1, William T Jewell, Dexter Morin, A Daniel Jones, Alan R Buckpitt.
Abstract
Naphthalene is a volatile polycyclic aromatic hydrocarbon generated during combustion and is a ubiquitous chemical in the environment. Short term exposures of rodents to air concentrations less than the current OSHA standard yielded necrotic lesions in the airways and nasal epithelium of the mouse, and in the nasal epithelium of the rat. The cytotoxic effects of naphthalene have been correlated with the formation of covalent protein adducts after the generation of reactive metabolites, but there is little information about the specific sites of adduction or on the amino acid targets of these metabolites. To better understand the chemical species produced when naphthalene metabolites react with proteins and peptides, we studied the formation and structure of the resulting adducts from the incubation of model peptides with naphthalene epoxide, naphthalene diol epoxide, 1,2-naphthoquinone, and 1,4-naphthoquinone using high resolution mass spectrometry. Identification of the binding sites, relative rates of depletion of the unadducted peptide, and selectivity of binding to amino acid residues were determined. Adduction occurred on the cysteine, lysine, and histidine residues, and on the N-terminus. Monoadduct formation occurred in 39 of the 48 reactions. In reactions with the naphthoquinones, diadducts were observed, and in one case, a triadduct was detected. The results from this model peptide study will assist in data interpretation from ongoing work to detect peptide adducts in vivo as markers of biologic effect.Entities:
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Year: 2012 PMID: 22870282 PMCID: PMC3411726 DOI: 10.1371/journal.pone.0042053
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Metabolite structures and peptide sequences.
1A shows the structures of the reactive metabolites of naphthalene. 1B shows the sequences of the model peptides. Sites of potential adduction by reactive metabolites are circled on the amino acid residues of the sequences.
MS/MS Ion series of unmodified and adduct-modified model peptides by naphthalene epoxide (NO) and naphthalene diol epoxide (NDO) at pH 8.5.
| Peptide | Modification | Precursor | b/y-ions detected | SupplementalFigure Ref. |
| GRGDSPC | NO | 835.34 | 386.18 (b4), 473.21 (b5), | 1 |
| GRGDSPC | NDO | 869.31 | 271.15 (b3), 386.17 (b4), 473.21 (b5), 570.26 (b6), |
|
| GRGDSPC | unmodified | 691.28 | 214.13 (b2), 271.15 (b3), 386.18 (b4), 473.21 (b5), 570.26 (b6), 306.11 (y3),634.26 (y6) | 1 |
| YGGFLRKR | NO | N/A | Precursor mass was not detected. No fragmentation. | N/A |
| YGGFLRKR | NDO | 1174.64 |
| 5 |
| YGGFLRKR | unmodified | 996.57 | 538.26 (b5), 694.37 (b6), 712.38 (b6+ H2O), 822.46 (b7), 840.47 (b7+ H2O),303.21 (y2) | 5 |
| DYKDDDDK | NO | 1139.45 ([M+H]+- H2O | 752.27 (b6), | 2 |
| DYKDDDDK | NDO | 1191.47 |
| 6 |
| DYKDDDDK | unmodified | 1013.41 | 407.19 (b3), 522.22 (b4), 637.25 (b5), 752.27 (b6), 867.30(b7), 377.17 (y3),492.19 (y4), 607.22 (y5), 735.33 (y6), 898.38 (y7) | 2,6 |
| DASFHSWG-NH2 | NO | 1049.45 |
| 3 |
| DASFHSWG-NH2 | NDO | 1083.45 |
| 7 |
| DASFHSWG-NH2 | unmodified | 905.39 | 558.23 (b5), 645.26 (b6), 831.34 (b7), 485.22 (y4), 719.33 (y6), 790.36 (y7) | 3,7 |
| EFYAPWCG | NO | 1116.50 |
| 4 |
| EFYAPWCG | NDO | 1150.46 | 794.35 (b6), | 8 |
| EFYAPWCG | unmodified | 972.39 | 511.22(b4), 608.27 (b5), 794.35 (b6), 897.36 (b7), 462.18 (y4), 533.22 (y5),696.28 (y6) | 4,8 |
| EIVRDIKE | NO | N/A | Precursor mass was not detected. No fragmentation. | N/A |
| EIVRDIKE | NDO | N/A | Precursor mass was not detected. No fragmentation. | N/A |
| EIVRDIKE | unmodified | 1001.56 | 498.30 (b4),613.33 (b5), 854.51 (b7), 983.55 ([M+H]+ – H2O – X) | 14 |
Product ion spectra for adducted peptides were indistinguishable between both pH conditions; more products were observed at pH 8.5 therefore ions series for the products at this pH was given.
Observed signals assigned as b- or y- ions are listed. The bold b- and y- ions represent ions modified by the naphthalene epoxides.
Reference to detailed supplemental spectra corresponding to the appropriate ion series.
The modifications are naphthalene epoxide (mass +144.06 Da).
In the fragment ion signals, X represents the mass of the adduct.
The modifications are naphthalene diol epoxide (mass +178.06 Da).
[DYKDDDDK + NO] was observed in the dehydrated form; fragmentation confirmed the adduct.
MS/MS Ion series of unmodified and adduct-modified model peptides by 1,2-naphthoquinone (1,2-NQ) and 1,4-naphthoquinone (1,4-NQ) at pH 8.5.
| Peptide | Modification |
| b/y-ions detected | Supplemental Figure Ref. |
| GRGDSPC | 1,2-NQ | 849.32 | 386.18 (b4), 473.21 (b5), 570.26 (b6), | 9 |
| GRGDSPC | 1,4-NQ | 849.32 | 271.15(b3), 386.18 (b4), 473.21 (b5), 570.26 (b6), | 15 |
| GRGDSPC | unmodified | 691.28 | 214.13 (b2), 271.15 (b3), 386.18 (b4), 473.21 (b5), 570.26 (b6),306.11 (y3), 634.26 (y6) | 1 g |
| YGGFLRKR | 1,2-NQ | 1154.61 |
| 10 |
| YGGFLRKR | 1,4-NQ | 1154.61 | 538.26 (b5), | 16 |
| YGGFLRKR | unmodified | 996.57 | 538.26 (b5), 694.37 (b6), 822.46 (b7), 303.21 (y2) | 9,16 |
| DYKDDDDK | 1,2-NQ | 1171.44 |
| 11 |
| DYKDDDDK | 1,4-NQ | 1171.44 | 752.27 (b6), |
|
| DYKDDDDK | unmodified | 1013.41 | 407.19 (b3), 522.22 (b4), 637.25 (b5), 752.27 (b6), 867.30(b7),377.17 (y3), 492.19 (y4), 607.22 (y5), 735.33 (y6), 898.38 (y7) | 2,6 h |
| DASFHSWG-NH2 | 1,2-NQ | 1063.42 |
| 12 |
| DASFHSWG-NH2 | 1,4-NQ | 1063.42 |
| 17 |
| DASFHSWG-NH2 | unmodified | 905.39 | 558.23 (b5), 645.26 (b6), 831.34 (b7), 485.22 (y4), 719.33 (y6), 790.36 (y7) | 3,7 i |
| EFYAPWCG | 1,2-NQ | 1130.43 | 608.27 (b5), | 13 |
| EFYAPWCG | 1,4-NQ | 1130.43 |
| 18 |
| EFYAPWCG | unmodified | 972.39 | 511.22(b4), 608.27 (b5), 794.35 (b6), 897.36 (b7), 462.18 (y4),533.22 (y5), 696.28 (y6) | 4,8 |
| EIVRDIKE | 1,2-NQ | 1159.59 | 504.27 (y4), | 14 |
| EIVRDIKE | 1,4-NQ | 1159.59 |
| 19 |
| EIVRDIKE | unmodified | 1001.56 | 498.30 (b4),613.33 (b5), 854.51 (b7), 983.55 ([M+H]+ – H2O – X) | 14, 19 |
Product ion spectra for adducted peptides were indistinguishable between both pH conditions; more products were observed at pH 8.5 therefore ions series for the products at this pH was given. Observed signals assigned as b- or y- ions are listed. The bold b- and y- ions represent the adduct-modified ions by the naphthoquinones.
Reference to detailed supplemental data spectra corresponding to the appropriate ion series.
The modifications are 1,2-naphthoquinone (mass +158.04).
The adducted masses were observed from peptide-metabolite incubations performed at both pHs; spectra obtained from products formed at pH 8.5 are given.
In the detected fragment ion signals, X represents the mass of the adduct.
The modifications are 1,4-naphthoquinone (mass +158.04).
The spectrum for these unmodified peptides are referenced to in the supplemental figures for the epoxide adducts, not the quinone adducts.
MS/MS Ion series of diadducted model peptides by naphthoquinones at pH 8.5.
| Peptide | Modification | Precursor | Ions Detected | Supplemental Figure Ref. |
| GRGDSPC | 1,2-NQ | 1007.35 |
| 9 |
| GRGDSPC | 1,4-NQ | 1007.35 |
| 15 |
| DYKDDDDK | 1,2-NQ | 1329.47 |
| 11 |
| DYKDDDDK | 1,4-NQ | 1329.47 | 752.27 (b6), 867.30 (b7), 1013.40 ([M+H]+- X) | Not shown |
| DASFHSWG-NH2 | 1,2-NQ | 1221.46 |
| 12 |
| DASFHSWG-NH2 | 1,4-NQ | 1221.46 |
| 17 |
| EFYAPWCG | 1,2-NQ | 1288.47 |
| 13 |
| EFYAPWCG | 1,4-NQ | 1288.47 | 794.35 (b6) | 18 |
Product ion spectra for adducted peptides were indistinguishable between both pH conditions; more products were observed at pH 8.5 therefore ions series for the products at this pH was given.
Observed signals assigned as b- or y- ions for the diadducts are listed.
Reference to detailed spectra corresponding to the appropriate ion series.
The modifications are 1,2-naphthoquinone (monoadduct mass +158.04).
The adducted masses were observed in incubations performed at both pHs; data are from pH 8.5 incubations.
Ions in bold represent modification by a naphthoquinone. A bold b- or y- represents a monoadducted ion. Some of the diadduct MS/MS spectra had monoadduct fragment ions present that were absent in the monoadduct MS/MS spectra.
The modifications are 1,4-naphthoquinone (monoadduct mass +158.04).
In the detected fragment ion signals, X represents the mass of the adduct.
Figure 2MS/MS for adduction of peptide GRGDSPC by NDO (m/z 869.3483).
2A shows the possible y- and b-ions associated with MS fragmentation of the peptide adducted on cysteine. 2B shows the MS/MS spectrum of the adducted peptide acquired with labeled ions for designation. Adducted ions are in bold. Fragmentation patterns were the same when incubations were conducted at either pH 7.4 or 8.5.
Figure 3MS/MS for adduction of peptide DYKDDDDK by 1,4-NQ (m/z 1171.4366).
3A shows the possible y- and b-ions associated with MS fragmentation of the peptide adducted on lysine. 3B shows the MS/MS spectrum of the adducted peptide acquired with labeled ions for designation. Adducted ions are in bold. Fragmentation patterns were the same when samples were incubated at both pH 7.4 and 8.5.
Figure 4Depletion of unadducted peptides by metabolites.
Depletion of GRGDSPC (A), DYKDDDDK (B), and DASFHSWG-NH2 (C) by reaction with either NO (naphthalene epoxide) or NQ (1,2-naphthoquinone) at two different ratios of peptide: metabolite, 1∶1 and 1∶10. Depletion of the unadducted peptide was monitored by measuring the peak area of the peptide at each time point.
Figure 5Comparison of peptide binding by metabolite.
Comparison of preferential binding between peptides containing different nucleophilic residues (Cys, Lys, and His) in incubations with NO (A) and NQ (B). Degree of preferential binding was monitored by measuring the peak area of the unadducted peptide ion over time.
Figure 6Structures of the predicted adducts.
The products of adduct formation with epoxides were the result of SN2 reactions while the products of adducts formed with naphthoquinones were the result of Michael Addition reactions.
Sites of Adduction.
| pH | ||
| Metabolite | 7.4 | 8.5 |
|
| DYKDDDDK | GRGDSP |
|
| DY | GRGDSP |
|
| GRGDSP | GRGDSP |
|
| GRGDSP | GRGDSP |
Sites of adduction deduced for each peptide.
represents an undetermined site of adduction. Diadducts and triadduct formed during reactions conducted at pH 8.5 were also formed at pH 7.4.