| Literature DB >> 21390239 |
Miriam Hensel1, Rebecca Steurer, Juergen Fichtl, Carsten Elger, Frank Wedekind, Andreas Petzold, Tilman Schlothauer, Michael Molhoj, Dietmar Reusch, Patrick Bulau.
Abstract
Amino acid oxidation is known to affect the structure, activity, and rate of degradation of proteins. Methionine oxidation is one of the several chemical degradation pathways for recombinant antibodies. In this study, we have identified for the first time a solvent accessible tryptophan residue (Trp-32) in the complementary-determining region (CDR) of a recombinant IgG1 antibody susceptible to oxidation under real-time storage and elevated temperature conditions. The degree of light chain Trp-32 oxidation was found to be higher than the oxidation level of the conserved heavy chain Met-429 and the heavy chain Met-107 of the recombinant IgG1 antibody HER2, which have already been identified as being solvent accessible and sensitive to chemical oxidation. In order to reduce the time for simultaneous identification and functional evaluation of potential methionine and tryptophan oxidation sites, a test system employing tert-butylhydroperoxide (TBHP) and quantitative LC-MS was developed. The optimized oxidizing conditions allowed us to specifically oxidize the solvent accessible methionine and tryptophan residues that displayed significant oxidation in the real-time stability and elevated temperature study. The achieved degree of tryptophan oxidation was adequate to identify the functional consequence of the tryptophan oxidation by binding studies. In summary, the here presented approach of employing TBHP as oxidizing reagent combined with quantitative LC-MS and binding studies greatly facilitates the efficient identification and functional evaluation of methionine and tryptophan oxidation sites in the CDR of recombinant antibodies.Entities:
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Year: 2011 PMID: 21390239 PMCID: PMC3048405 DOI: 10.1371/journal.pone.0017708
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1LC-separation UV-profiles of the real-time stability sample (9 months at 4°C) and the corresponding reference material (RS, stored at −70°C) after tryptic cleavage.
The m/z-values of Met-253 and Trp-32 containing tryptic antibody peptides, obtained by LC-ESI-MS, are listed in the inset along with their corresponding LC fraction number. Peak identification and quantification performed by LC-MS. Chromatographic conditions are described in the materials and methods.
Figure 2Low-energy CID mass spectra and resulting amino acid sequence of the triply protonated quasi molecular ions of the non-oxidized (upper panel) and oxidized (medium and lower panel) tryptic light chain fragment 25–42 at m/z 703.05, 704.39, and 708.38.
The oxidized Trp-32 residue is highlighted in bold-face.
Figure 3Extracted ion chromatograms (EIC) of m/z 703.05, 704.39, and 708.38 from the reference material and the stability sample.
Relative quantification of antibody methionine and tryptophan oxidation (Met-83, Met-253, and Trp-32) by ion current chromatogram analysis of the oxidized product and its parent peptide using the quantification software GRAMS/32TM (columns 1–4).
| Met-83 (+16 Da) | Met-253 (+16 Da) | Trp-32 (+4 Da) | Trp-32 (+16 Da) | % Fragment % Monomer % Aggregat | % Target Binding | |
|
| 0.2 (±0.1) | 2.1 (±0.1) | 0.5 (±0.1) | 0.6 (±0.1) | <0.199.3 (±0.1)0.6 (±0.1) | 100 (±10) |
|
| 1.3 | 25.6 | 8.3 | 8.1 | 0.497.72.0 | n.d. |
|
| 0.3 | 7.6 | 1.6 | 3.1 | 4.894.70.6 | n.d. |
|
| 0.6 (±0.3) | 2.3 (±0.4) | 0.5 (±0.1) | 0.6 (±0.2) | 0.7 (±0.1)98.7 (±0.1)0.5 (±0.1) | 100 (±10) |
|
| 1.6 | 48.3 | 0.8 | 1.4 | n.d. | n.d. |
|
| 5.8 | 97.4 | 2.7 | 3.7 | n.d. | n.d. |
|
| 9.5 | 99.1 | 5.2 | 4.0 | n.d. | n.d. |
|
| 86.9 | 100 | 11.5 | 8.3 | n.d. | n.d. |
|
| 0.9 (±0.1) | 73.2 (±0.7) | 3.2 (±0.1) | 5.0 (±0.2) | 1.5 (±0.1)97.1 (±0.1)1.4 (±0.1) | 96 (±10) |
|
| 2.0 (±0.6) | 83.1 (±1.6) | 6.3 (±0.1) | 4.8 (±0.5) | 4.5 (±0.1)92.5 (±0.5)3.0 (±0.4) | 92 (±11) |
|
| 0.3 (±0.1) | 2.4 (±0.4) | 0.5 (±0.1) | 1.0 (±0.3) | n.d. | n.d. |
|
| 0.5 (±0.2) | 67.0 (±2.8) | 13.3 (±1.3) | 12.0 (±1.9) | 0.6 (±0.1)96.8 (±0.1)2.6 (±0.1) | 68 (±13) |
Formation of fragments and aggregates was monitored by size-exclusion chromatography (Column 5) and target binding was assessed by SPR-analysis (Column 6). Data is represented as mean ± S.D; n.d. not determined.
Figure 4Analysis of antibody target binding by surface plasmon resonance.
Biacore sensorgrams showing the pH 7.0 target binding (100 nM) following different TBHP exposures.
Relative quantification of HER2 methionine oxidation (Met-83, Met-107, and Met-255) by ion current chromatogram analysis of the oxidized product and its parent peptide using the quantification software GRAMS/32™.
| Met-83 (+16 Da) | Met-107 (+16 Da) | Met-255 (+16 Da) | |
|
| <0.2 | <0.2 | 2.3 |
|
| 0.6 | 1.6 | 6.6 |
|
| <0.2 | 1.2 (±0.1) | 2.5 (±0.8) |
|
| <0.2 | 7.2 (±0.4) | 72.3 (±0.7) |