Papers › Bayesian Optimization of Antibodies Informed by a Generative Model of Evolving Sequences

Bayesian Optimization of Antibodies Informed by a Generative Model of Evolving Sequences

10 Dec 2024arXiv:2412.07763archive 2025-07-28

Alan Nawzad Amin, Nate Gruver, Yilun Kuang, Lily Li, Hunter Elliott, Calvin Mccarter, Aniruddh Raghu, Peyton Greenside, Andrew Gordon Wilson

To build effective therapeutics, biologists iteratively mutate antibody sequences to improve binding and stability. Proposed mutations can be informed by previous measurements or by learning from large antibody databases to predict only typical antibodies. Unfortunately, the space of typical antibodies is enormous to search, and experiments often fail to find suitable antibodies on a budget. We introduce Clone-informed Bayesian Optimization (CloneBO), a Bayesian optimization procedure that efficiently optimizes antibodies in the lab by teaching a generative model how our immune system optimizes antibodies. Our immune system makes antibodies by iteratively evolving specific portions of their sequences to bind their target strongly and stably, resulting in a set of related, evolving sequences known as a clonal family. We train a large language model, CloneLM, on hundreds of thousands of clonal families and use it to design sequences with mutations that are most likely to optimize an antibody within the human immune system. We propose to guide our designs to fit previous measurements with a twisted sequential Monte Carlo procedure. We show that CloneBO optimizes antibodies substantially more efficiently than previous methods in realistic in silico experiments and designs stronger and more stable binders in in vitro wet lab experiments.

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2ran · our draft was wrong
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repeat_kv alannawzadamin/clonebo/clonebo/modeling_llama.py official repository ran · fixture could not drive it fingerprinted MIT (permissive) · 30d7eec482ebf6b1 · report
apply_rotary_pos_emb alannawzadamin/clonebo/clonebo/modeling_llama.py official repository ran · our draft was wrong MIT (permissive) · bac65c3dafaec040 · report
rotate_half alannawzadamin/clonebo/clonebo/modeling_llama.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · b99eea6376d1e212 · report
add_spaces alannawzadamin/clonebo/clonebo/seq_tools.py official repository unverified MIT (permissive) · 54d062332b0337d9 · report
get_mutations alannawzadamin/clonebo/clonebo/mutate_seqs.py official repository unverified MIT (permissive) · dfd1d6a5b4e84923 · report
get_muts alannawzadamin/clonebo/clonebo/mcmc_proposers.py official repository unverified MIT (permissive) · 905db22de06f087a · report
is_alph alannawzadamin/clonebo/clonebo/seq_tools.py official repository unverified MIT (permissive) · 80e8912cfa3f303d · report
log_norm_cdf alannawzadamin/clonebo/clonebo/mcmc.py official repository unverified MIT (permissive) · 55adb51ec80e4708 · report
log_norm_cdf_helper alannawzadamin/clonebo/clonebo/mcmc.py official repository unverified MIT (permissive) · bdb1815a9757af56 · report
norm_cdf alannawzadamin/clonebo/clonebo/mcmc.py official repository unverified MIT (permissive) · dde0b5528ed75c4d · report
remove_spaces alannawzadamin/clonebo/clonebo/seq_tools.py official repository unverified MIT (permissive) · c248343ce486076a · report
setup_clone_datasets alannawzadamin/clonebo/clonebo/data.py official repository unverified MIT (permissive) · 116b7773402181df · report

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Bayesian OptimizationLanguage ModelingLanguage ModellingLarge Language Model

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