Gas-phase unfolding assay rapidly predicts structure-function relationships in engineered antibodies with tuned flexibilities

Газофазный тест разворачивания быстро предсказывает соотношения структура–функция в сконструированных антителах с регулируемой гибкостью
Brandon T. Ruotolo, Mark S. Cragg, Hayden Fisher, Christine A. Penfold, Tatyana Inzhelevskaya, Patrick J. Duriez, Rosendo Villafuerte-Vega, Michael R. Armbruster, Isabel G Elliott, H. T. Claude Chan, C. Ian Mockridge
2026-06-29

agonistic activity predictioncollision-induced unfoldinggas-phase protein unfoldinghIgG2 monoclonal antibodieshinge engineering
Human (h)IgG2 monoclonal antibodies (mAbs) are potent agonists due, in part, to their ability to undergo disulfide shuffling within their hinge regions. Herein, we describe a rapid, sensitive, collision-induced unfolding (CIU) assay that possesses a predictive relationship between gas-phase protein unfolding and agonism in hIgG2 variants. Furthermore, our results highlight the significance of hinge engineering in tuning mAb structure-function relationships for the development of future biotherapeutics. The agonistic activity of IgG2 antibodies depends, in part, on the flexibility of their hinge region, which is slow to measure in full-length antibodies. Here, the authors develop a rapid mass spectrometry assay that gauges this flexibility and predicts the agonism of engineered antibody variants.
1
A predictive relationship exists between gas-phase protein unfolding (via CIU) and functional agonistic activity in hIgG2 variants.
2
Collision-induced unfolding (CIU) gas-phase assay rapidly and sensitively predicts agonism in human IgG2 antibody variants by measuring unfolding behavior.
3
Hinge engineering tunes monoclonal antibody structure-function relationships, with hinge flexibility affecting agonistic activity.
4
The CIU assay provides a fast alternative to slow traditional measurements of hinge flexibility in full-length antibodies for biotherapeutic development.

Engineered human IgG2 monoclonal antibodies with tuned hinge-region flexibilities

Prediction and measurement of hinge-region flexibility via a gas-phase collision-induced unfolding (CIU) mass-spectrometry assay and its relationship to agonistic activity (structure–function relationship)

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2026-06-29
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Brandon T. Ruotolo
Mark S. Cragg
Hayden Fisher
Christine A. Penfold
Tatyana Inzhelevskaya
Patrick J. Duriez
Rosendo Villafuerte-Vega
Michael R. Armbruster
Isabel G Elliott
H. T. Claude Chan
C. Ian Mockridge
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