| Literature DB >> 33651405 |
Andrei Hutanu1,2, Peter C Hauser2, Bernd Moritz1, Steffen Kiessig1, Aurélie Noël1, Jan O Stracke1, Markus Wild1, Maria A Schwarz2,3.
Abstract
Oxidative damage of biopharmaceuticals during manufacturing and storage is a key concern throughout pharmaceutical development. However, few simple and robust analytical methods are available for the determination of oxidation sites. Here, the potential of affinity capillary electrophoresis (ACE) in the separation of proteins with oxidized methionine (Met) residues is shown. Silver(I) and gold(I) ions have the attribute to selectively form complexes with thioethers over sulfoxides. The addition of these ions to the BGE leads to a selective complexation of Met residues and, thus, to a change of charge allowing separation of species according to the different oxidation states of Met. The mechanisms of these interactions are discussed and binding constants for peptides containing Met with silver(I) are calculated. Additionally, the proposed method can be used as an indicator of oxidative stress in large proteins. The presented technique is easily accessible, economical, and has rapid analysis times, adding new approaches to the analytical toolbox of Met sulfoxide detection.Entities:
Keywords: Affinity capillary electrophoresis; Gold; Methionine sulfoxide; Monoclonal antibody; Silver
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Year: 2021 PMID: 33651405 PMCID: PMC9291207 DOI: 10.1002/elps.202000355
Source DB: PubMed Journal: Electrophoresis ISSN: 0173-0835 Impact factor: 3.595
Figure 1Capillary electropherograms of the peptides 2 M (black lines), M‐(3)‐O (red lines), M‐(6)‐O (green lines), MOMO (blue lines), or a mix of all four (teal lines) in 50 mM phosphate buffer, pH 3. (A) Addition of 250 μM AgF into the BGE. (B) Addition of 375 μM AuCl3 into the BGE. (C) Effects on the electropherogram of 2 M with 0–2000 μM AuCl3 in the BGE. All lines were shifted according to the marker peak (His). Separation voltage of 20 kV; capillary: fused silica.
Figure 2Mobility plot for the peptides 2 M (black); M‐(3)‐O (red); M‐(6)‐O (green); and MOMO (blue) in 50 mM phosphate buffer, pH 3. The corresponding lines are fits according to Eqs. (11) and (12). Displayed error bars represent standard deviations of four measurements. Separation voltage: 20 kV; capillary: fused silica. Inset table: Silver complex formation constants for [Ag(MXO)] and [Ag2(2M)] according to Eqs. (9) and (10). Standard deviations of the fit are given in parentheses.
Figure 3Reaction mechanism of Met with AuCl4 –
Figure 4Effects of the AgF addition on the mobility of stressed mAb samples: mAb1 (A) and mAb2 (B) were stressed with 1% H2O2 for 1 h (red lines) and 6 h (green lines) and compared with unstressed samples (black lines) in a metal‐free BGE. The same BGE was modified with 500 μM AgF and the experiment was repeated for mAb1 (C) and mAb2 (D). BGE: 400 mM EACA, 2 mM TETA, 0.05% HPMC, pH 5.7; separation voltage: 20 kV; capillary: fused silica. All lines were shifted according to the marker (His).