bioRxiv · 10.1101/2024.10.03.616038
Computational design of developable therapeutic antibodies: efficient traversal of binder landscapes and rescue of escape mutations
Abstract
Developing therapeutic antibodies is a challenging endeavour, often requiring large-scale screening to produce initial binders, that still often require optimisation for developability. We present a computational pipeline for the discovery and design of therapeutic antibody candidates, which incorporates physics- and AI-based methods for the generation, assessment, and validation of developable candidate antibodies against diverse epitopes, via efficient few-shot experimental screens. We demonstrate that these orthogonal methods can lead to promising designs. We evaluated our approach by experimentally testing a small number of candidates against multiple SARS-CoV-2 variants in three different tasks: (i) traversing sequence landscapes of binders, we identify highly sequence dissimilar antibodies that retain binding to the Wuhan strain, (ii) rescuing binding from escape mutations, we show up to 54% of designs gain binding affinity to a new subvariant and (iii) improving developability characteristics of antibodies while retaining binding properties. These results together demonstrate an end-to-end antibody design pipeline with applicability across a wide range of antibody design tasks. We experimentally characterised binding against different antigen targets, developability profiles, and cryo-EM structures of designed antibodies. Our work demonstrates how combined AI and physics computational methods improve productivity and viability of antibody designs.
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Dreyer, F. A., Schneider, C., Kovaltsuk, A., Cutting, D., Byrne, M. J., Nissley, D. A., Wahome, N., Kenlay, H., Marks, C., Errington, D., Gildea, R. J., Damerell, D., Tizei, P., Bunjobpol, W., Darby, J. F., Drulyte, I., Hurdiss, D. L., Surade, S., Pires, D. E. V., Deane, C. M.. 2024-10-04. Computational design of developable therapeutic antibodies: efficient traversal of binder landscapes and rescue of escape mutations. https://doi.org/10.1101/2024.10.03.616038
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