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CLIPZyme: Reaction-Conditioned Virtual Screening of Enzymes

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arxiv 2402.06748 v1 pith:NFSTBFYK submitted 2024-02-09 q-bio.QM

CLIPZyme: Reaction-Conditioned Virtual Screening of Enzymes

classification q-bio.QM
keywords clipzymeenzymescreeningcomputationalenzymespredictorsreactionremain
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Computational screening of naturally occurring proteins has the potential to identify efficient catalysts among the hundreds of millions of sequences that remain uncharacterized. Current experimental methods remain time, cost and labor intensive, limiting the number of enzymes they can reasonably screen. In this work, we propose a computational framework for in-silico enzyme screening. Through a contrastive objective, we train CLIPZyme to encode and align representations of enzyme structures and reaction pairs. With no standard computational baseline, we compare CLIPZyme to existing EC (enzyme commission) predictors applied to virtual enzyme screening and show improved performance in scenarios where limited information on the reaction is available (BEDROC$_{85}$ of 44.69%). Additionally, we evaluate combining EC predictors with CLIPZyme and show its generalization capacity on both unseen reactions and protein clusters.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Multi-Alignment Contrastive Learning for Enzyme--Reaction Retrieval

    q-bio.BM 2025-12 conditional novelty 5.0

    FGW-CLIP, a contrastive method that aligns enzymes and reactions while also aligning within-domain EC structure with a Gromov-Wasserstein regularizer, reports state-of-the-art retrieval on EnzymeMap and ReactZyme.