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placer

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更新时间2026年5月25日 11:01

Run PLACER (Protein-Ligand Atomistic Conformational Ensemble Resolver, formerly ChemNet) — a Baker-lab graph neural network that operates entirely at the atomic level to denoise / rebuild small-molecule and protein-sidechain atom positions, and to generate stochastic ensembles that model conformational heterogeneity. Use this skill when: (1) Docking a ligand that is **already present** in an input PDB / mmCIF into its binding pocket and scoring pose confidence (the headline use case), (2) Predicting / rebuilding protein **side-chain** conformations around a ligand or in an apo pocket (sidechain repacking with confidence), (3) Generating a conformational **ensemble** (50-200 stochastic samples) of a ligand + pocket to study heterogeneity rather than a single pose, (4) Validating designed enzyme / heme-binder / metalloprotein active sites by checking whether PLACER re-resolves the intended ligand pose at low prmsd, (5) Co-predicting **multiple ligands** in one pocket (`--predict_multi`), kee

安装

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