Generation of site-distinct N-glycan variants for in vitro bioactivity testing.


Journal

Biotechnology and bioengineering
ISSN: 1097-0290
Titre abrégé: Biotechnol Bioeng
Pays: United States
ID NLM: 7502021

Informations de publication

Date de publication:
05 2019
Historique:
received: 23 07 2018
revised: 05 12 2018
accepted: 17 01 2019
pubmed: 20 1 2019
medline: 15 4 2020
entrez: 20 1 2019
Statut: ppublish

Résumé

Glycosylation, a critical product quality attribute, may affect the efficacy and safety of therapeutic proteins in vivo. Chinese hamster ovary fed-batch cell culture batches yielded consistent glycoprofiles of a Fc-fusion antibody comprizing three different N-glycosylation sites. By adding media supplements at specific concentrations in cell culture and applying enzymatic glycoengineering, a diverse N-glycan variant population was generated, including high mannose, afucosylated, fucosylated, agalactosylated, galactosylated, asialylated, and sialylated forms. Site-specific glycosylation profiles were elucidated by glycopeptide mapping and the effect of the glycosylation variants on the FcγRIIIa receptor binding affinity and the biological activity (cell-based and surface plasmon resonance) was assessed. The two fusion body glycosylation sites were characterized by a high degree of sialic acid, more complex N-glycan structures, a higher degree of antennarity, and a site-specific behavior in the presence of a media supplement. On the other hand, the media supplements affected the Fc-site glycosylation heterogeneity similarly to the various studies described in the literature with classical monoclonal antibodies. Enzymatic glycoengineering solely managed to generate high levels of galactosylation at the fusion body sites. Variants with low core fucosylation, and to a lower extent, high mannose glycans exhibited increased FcγRIIIa receptor binding affinity. All N-glycan variants exhibited weak effects on the biological activity of the fusion body. Both media supplementation and enzymatic glycoengineering are suitable to generate sufficient diversity to assess the effect of glycostructures on the biological activity.

Identifiants

pubmed: 30659587
doi: 10.1002/bit.26930
doi:

Substances chimiques

Antibodies, Monoclonal 0
FCGR3A protein, human 0
Immunoglobulin Fc Fragments 0
Polysaccharides 0
Receptors, IgG 0
Mannose PHA4727WTP

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

1017-1028

Informations de copyright

© 2019 Wiley Periodicals, Inc.

Auteurs

David Brühlmann (D)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.
Department of Biotechnology and Biophysics, Julius-Maximilians-Universität Würzburg, Biozentrum, Würzburg, Germany.

Thomas Vuillemin (T)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.

Abhijeet Satwekar (A)

Merck Serono S.p.A, Analytical Development Biotech Products, Guidonia Montecelio, Italy.

Eugenio Galano (E)

Merck Serono S.p.A, Analytical Development Biotech Products, Guidonia Montecelio, Italy.

Angelo Palmese (A)

Merck Serono S.p.A, Analytical Development Biotech Products, Guidonia Montecelio, Italy.

Alessandra D'Angelo (A)

Merck Serono S.p.A, Analytical Development Biotech Products, Guidonia Montecelio, Italy.

Zeynep Manco (Z)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.

Jonathan Souquet (J)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.

Hervé Broly (H)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.

Markus Sauer (M)

Department of Biotechnology and Biophysics, Julius-Maximilians-Universität Würzburg, Biozentrum, Würzburg, Germany.

Jürgen Hemberger (J)

Institute for Biochemical Engineering and Analytics, University of Applied Sciences Giessen, Giessen, Germany.

Martin Jordan (M)

Merck Biopharma, Biotech Process Sciences, Fenil-sur-Corsier, Switzerland.

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Classifications MeSH