Biophysical characterization and stability of modified IgG1 antibodies with different hexamerization propensities

Publication date

2022-06

Authors

van Kampen, Muriel D
Kuipers-De Wilt, Leonie H A M
van Egmond, Mariëlle L
Reinders-Blankert, Petra
van den Bremer, Ewald T J
Wang, GuanboISNI 0000000507797929
Heck, Albert J RORCID 0000-0002-2405-4404ISNI 0000000393921118
Parren, Paul W H I
Beurskens, Frank J
Schuurman, Janine

Editors

Advisors

Supervisors

Document Type

Article
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License

cc_by_nc_nd

Abstract

The hexamerization of natural, human IgG antibodies after cell surface antigen binding can induce activation of the classical complement pathway. Mutations stimulating Fc domain-mediated hexamerization can potentiate complement activation and induce the clustering of cell surface receptors, a finding that was applied to different clinically investigated antibody therapeutics. Here, we biophysically characterized how increased self-association of IgG1 antibody variants with different hexamerization propensity may impact their developability, rather than functional properties. Self-Interaction Chromatography, Dynamic Light Scattering and PEG-induced precipitation showed that IgG variant self-association at neutral pH increased in the order wild type (WT) < E430G < E345K < E345R < E430G-E345R-S440Y, consistent with functional activity. Self-association was strongly pH-dependent, and single point mutants were fully monomeric at pH 5. Differential Scanning Calorimetry and Fluorimetry showed that mutation E430G decreased conformational stability. Interestingly, heat-induced unfolding facilitated by mutation E430G was reversible at 60°C, while a solvent-exposed hydrophobic mutation caused irreversible aggregation. Remarkably, neither increased dynamic self-association propensity at neutral pH nor decreased conformational stability substantially affected the stability of concentrated variants E430G or E345K during storage for two years at 2-8°C. We discuss how these findings may inform the design and development of IgG-based therapeutics.

Keywords

Biophysical properties, Conformational and Colloidal stability, Developability, HexaBody, Hexamerization, Reversible self-association, Pharmaceutical Science

Citation

van Kampen, M D, Kuipers-De Wilt, L H A M, van Egmond, M L, Reinders-Blankert, P, van den Bremer, E T J, Wang, G, Heck, A J R, Parren, P W H I, Beurskens, F J, Schuurman, J & de Jong, R N 2022, 'Biophysical characterization and stability of modified IgG1 antibodies with different hexamerization propensities', Journal of Pharmaceutical Sciences, vol. 111, no. 6, pp. 1587-1598. https://doi.org/10.1016/j.xphs.2022.02.016