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Thomas Lemmin

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Open access Aug 2026

Synthetic sequence alignments as programmable probes of learned conformational landscapes in deep learning protein structure predictors

Synthetic MSAs are suggested as a generalizable framework for dissecting the conformational landscapes encoded by deep learning structure predictors, with direct implications for understanding model behavior and accessing biologically relevant hidden states.

J. Gut, Noah Kleinschmidt, Thomas Lemmin · 0 citations

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