cs.AI updates on arXiv.org 07月03日 12:07
Drug Discovery SMILES-to-Pharmacokinetics Diffusion Models with Deep Molecular Understanding
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本文介绍了一种名为Imagand的新型SMILES到药物药代动力学(S2PK)扩散模型,旨在解决药物发现AI中数据稀疏性问题,通过生成合成PK数据提高下游任务性能,为药物发现研究提供高效数据生成工具。

arXiv:2408.07636v2 Announce Type: replace-cross Abstract: Artificial intelligence (AI) is increasingly used in every stage of drug development. One challenge facing drug discovery AI is that drug pharmacokinetic (PK) datasets are often collected independently from each other, often with limited overlap, creating data overlap sparsity. Data sparsity makes data curation difficult for researchers looking to answer research questions in poly-pharmacy, drug combination research, and high-throughput screening. We propose Imagand, a novel SMILES-to-Pharmacokinetic (S2PK) diffusion model capable of generating an array of PK target properties conditioned on SMILES inputs. We show that Imagand-generated synthetic PK data closely resembles real data univariate and bivariate distributions, and improves performance for downstream tasks. Imagand is a promising solution for data overlap sparsity and allows researchers to efficiently generate ligand PK data for drug discovery research. Code is available at https://github.com/bing1100/Imagand.

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药物发现 药代动力学 AI模型 数据生成 Imagand
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