Authors
Tsopanoglou, A., Ghahremanzamaneh, M., Gomez Aquino, I., Doyle, K., Glennon, B., Carillo, S., Bones, J., Jimenez del Val, I.
Abstract
N-linked Fc galactosylation drives variability in therapeutic mAb quality, affecting complement-dependent cytotoxicity and ADCC. Current control strategies suffer from narrow ranges, productivity loss, or unwanted glycoforms. Here, we combine metabolic and cellular glycoengineering by feeding 2-deoxy-2-fluorogalactose (2FG) to CHO cells engineered for hypergalactosylation via COSMC knockout and {beta}4-galactosyltransferase overexpression (C /GT+), achieving broad, tuneable control of Fc {beta}4-galactosylation. In DP12 C-/GT+ cells, a split-feed regimen spanned a wide galactosylation range (95-46%) but generated substantial aglycosylated and Man5 glycoforms. The same regimen in a second host, VRC01 C-/GT+, gave only a narrow range, indicating 2FG dosing does not transfer directly across cell lines. Based on a proposed mechanism where 2FG is metabolised via the Leloir pathway into inhibitory fluorinated nucleotide-sugar intermediates, we developed a cell-normalised, multi-bolus feeding strategy that substantially broadened control in VRC01 C-/GT+ cells while suppressing aglycosylation and Man5 formation. In a fed-batch Ambr(R) 250 process, this strategy achieved comparable galactosylation reduction with roughly ten-fold less 2FG, showing that the fraction of mAb secreted after feeding is a key determinant of control strategy efficiency. Across the resulting glycoform range, Bio-Layer Interferometry identified Fc {beta}4-galactosylation as the strongest correlate of Fc{gamma}RIIIA (CD16a) binding affinity (R2 = 0.92). Together, these findings establish combined metabolic and cellular glycoengineering as a platform for controlling mAb galactosylation across a broad range, with potential to fine-tune downstream pharmacological activity.
Preprint server:
bioRxiv
The authors list and abstract were imported from bioRxiv on 29 Sep 2026.
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