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FABind+: Enhancing Molecular Docking through Improved Pocket Prediction and Pose Generation

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arxiv 2403.20261 v4 pith:CZOPUMX2 submitted 2024-03-29 q-bio.BM cs.AIcs.LG

classification q-bio.BMcs.AIcs.LG
keywords fabinddockingmolecularpocketpredictionsamplingaccuracydiscovery
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Molecular docking is a pivotal process in drug discovery. While traditional techniques rely on extensive sampling and simulation governed by physical principles, these methods are often slow and costly. The advent of deep learning-based approaches has shown significant promise, offering increases in both accuracy and efficiency. Building upon the foundational work of FABind, a model designed with a focus on speed and accuracy, we present FABind+, an enhanced iteration that largely boosts the performance of its predecessor. We identify pocket prediction as a critical bottleneck in molecular docking and propose a novel methodology that significantly refines pocket prediction, thereby streamlining the docking process. Furthermore, we introduce modifications to the docking module to enhance its pose generation capabilities. In an effort to bridge the gap with conventional sampling/generative methods, we incorporate a simple yet effective sampling technique coupled with a confidence model, requiring only minor adjustments to the regression framework of FABind. Experimental results and analysis reveal that FABind+ remarkably outperforms the original FABind, achieves competitive state-of-the-art performance, and delivers insightful modeling strategies. This demonstrates FABind+ represents a substantial step forward in molecular docking and drug discovery. Our code is in https://github.com/QizhiPei/FABind.

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Cited by 2 Pith papers

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

  1. CovDocker: Benchmarking Covalent Drug Design with Tasks, Datasets, and Solutions

    q-bio.BM 2025-06 conditional novelty 6.0 of 10

    CovDocker provides a large ML-ready benchmark for covalent protein-ligand docking by decomposing the problem into reactive site prediction, covalent reaction prediction, and covalent pose prediction, with baseline mod...

  2. Graph Neural Networks in Modern AI-aided Drug Discovery

    q-bio.BM 2025-06 conditional novelty 1.0 of 10

    A comprehensive model-centric review of graph neural network methods and applications in AI-aided drug discovery, from molecular representation to synthesis planning.

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