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Unique Impacts of Methionine Oxidation, Tryptophan Oxidation, and Asparagine Deamidation on Antibody Stability and Aggregation.
Alam, Magfur E; Slaney, Thomas R; Wu, Lina; Das, Tapan K; Kar, Sambit; Barnett, Gregory V; Leone, Anthony; Tessier, Peter M.
Affiliation
  • Alam ME; Isermann Department of Chemical & Biological Engineering, Center for Biotechnology & Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, New York 12180.
  • Slaney TR; Biologics Development, Bristol-Myers Squibb, Pennington, New Jersey 08534.
  • Wu L; Department of Chemical Engineering, Biointerfaces Institute, University of Michigan, Ann Arbor, Michigan 48109.
  • Das TK; Biologics Development, Bristol-Myers Squibb, Pennington, New Jersey 08534.
  • Kar S; Biologics Development, Bristol-Myers Squibb, Pennington, New Jersey 08534.
  • Barnett GV; Biologics Development, Bristol-Myers Squibb, Pennington, New Jersey 08534.
  • Leone A; Biologics Development, Bristol-Myers Squibb, Pennington, New Jersey 08534.
  • Tessier PM; Isermann Department of Chemical & Biological Engineering, Center for Biotechnology & Interdisciplinary Studies, Rensselaer Polytechnic Institute, Troy, New York 12180; Department of Chemical Engineering, Biointerfaces Institute, University of Michigan, Ann Arbor, Michigan 48109; Department o
J Pharm Sci ; 109(1): 656-669, 2020 01.
Article in En | MEDLINE | ID: mdl-31678251
ABSTRACT
Monoclonal antibodies are attractive therapeutic agents because of their impressive biological activities and favorable biophysical properties. Nevertheless, antibodies are susceptible to various types of chemical modifications, and the impact of such modifications on antibody physical stability and aggregation remains understudied. Here, we report a systematic analysis of the impact of methionine oxidation, tryptophan oxidation, and asparagine deamidation on antibody conformational and colloidal stability, hydrophobicity, solubility, and aggregation. Interestingly, we find little correlation between the impact of these chemical modifications on antibody conformational stability and aggregation. Methionine oxidation leads to significant reductions in antibody conformational stability while having little impact on antibody aggregation except at extreme conditions (low pH and elevated temperature). Conversely, tryptophan oxidation and asparagine deamidation have little impact on antibody conformational stability while promoting aggregation at a wide range of solution conditions, and the aggregation mechanisms appear linked to unique types of reducible and nonreducible covalent crosslinks and, in some cases, to increased levels of attractive colloidal interactions. These findings highlight that even related types of chemical modifications can lead to dissimilar antibody aggregation mechanisms, and evaluating these findings for additional antibodies will be important for improving the systematic generation of antibodies with high chemical and physical stability.
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Asparagine / Tryptophan / Methionine / Antibodies, Monoclonal Language: En Journal: J Pharm Sci Year: 2020 Type: Article

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Asparagine / Tryptophan / Methionine / Antibodies, Monoclonal Language: En Journal: J Pharm Sci Year: 2020 Type: Article