研究目的
To evaluate the conformational and functional impact of Trp oxidation for two mAb subtypes, which is essential in determining the structure-function relationship and establishing appropriate analytical control strategies during protein therapeutics development.
研究成果
Oxidation of Trp in CDRs of mAbs significantly disrupts antigen binding and alters conformation in variable domains. Chemical modification brought by Trp oxidation can lead to undesirable physical changes in mAbs such as increased propensity for aggregation and loss of potency. CDR Trp oxidation should be carefully monitored during process development of mAbs.
研究不足
The study focuses on the impact of Trp oxidation on mAbs' conformation and antigen binding, but does not explore the correlation between increased flexibility with protein stability, which could be a long term impact stemming from Trp oxidation.
1:Experimental Design and Method Selection:
Selective Trp oxidation was induced by 2,2′-Azobis(2-amidinopropane) dihydrochloride (AAPH) treatment in the presence of free methionine (Met). The native and chemically oxidized mAbs were characterized by hydrogen-deuterium exchange mass spectrometry (HDX-MS) for conformational changes and surface plasmon resonance (SPR) for antigen-antibody binding.
2:Sample Selection and Data Sources:
The IgG1 mAb (mAb1) and IgG4 mAb (mAb4) were produced in Bristol-Myers Squibb Company. They were expressed in Chinese hamster ovary (CHO) cells and purified by standard chromatographic steps.
3:List of Experimental Equipment and Materials:
LC-MS grade water, LC-MS grade acetonitrile, 8 M Guanidine-HCl, premium grade TCEP-HCl, LC-MS grade formic acid, sequencing grade trypsin, Human Fab capture kit, CM5 Sensor Chip, HBS-EP+ running buffer and amine coupling kit.
4:Experimental Procedures and Operational Workflow:
Samples were incubated at room temperature protected from light. Oxidation reaction was stopped by buffer exchange with formulation buffer.
5:Data Analysis Methods:
Peptic peptides were identified based on HPLC separation of non-deuterated protein digest using MSE. MSE data was analyzed using ProteinLynx global server 3.0.
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LC-MS grade water
Honeywell
Used in the preparation of samples for LC-MS analysis.
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LC-MS grade acetonitrile
J.T. Baker
Used as a solvent in LC-MS analysis.
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8 M Guanidine-HCl
Thermo Scientific Pierce
Used for protein denaturation.
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premium grade TCEP-HCl
Thermo Scientific Pierce
Used for reducing disulfide bonds in proteins.
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LC-MS grade formic acid
Thermo Scientific Pierce
Used as a mobile phase additive in LC-MS analysis.
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sequencing grade trypsin
Promega
Used for protein digestion in peptide mapping.
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Human Fab capture kit
GE Healthcare Life Sciences
Used for capturing human Fab fragments in SPR analysis.
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CM5 Sensor Chip
GE Healthcare Life Sciences
Used as the sensor surface in SPR analysis.
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HBS-EP+ running buffer
GE Healthcare Life Sciences
Used as the running buffer in SPR analysis.
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amine coupling kit
GE Healthcare Life Sciences
Used for immobilizing ligands on the sensor chip in SPR analysis.
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