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Predicted Biological Activity of Purchasable ChemicalSpace

机译:购买化学品的预测生物活性空间

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摘要

Whereas 400 million distinct compounds are now purchasable within the span of a few weeks, the biological activities of most are unknown. To facilitate access to new chemistry for biology, we have combined the Similarity Ensemble Approach (SEA) with the maximum Tanimoto similarity to the nearest bioactive to predict activity for every commercially available molecule in ZINC. This method, which we label SEA+TC, outperforms both SEA and a naïve-Bayesian classifier via predictive performance on a 5-fold cross-validation of ChEMBL’s bioactivity data set (version 21). Using this method, predictions for over 40% of compounds (>160 million) have either high significance (pSEA ≥ 40), high similarity (ECFP4MaxTc ≥ 0.4), or both, for one or more of 1382 targets well described by ligands in the literature. Using a further 1347 less-well-described targets, we predict activities for an additional 11 million compounds. To gauge whether these predictions are sensible, we investigate 75 predictions for 50 drugs lacking abinding affinity annotation in ChEMBL. The 535 million predictionsfor over 171 million compounds at 2629 targets are linked to purchasinginformation and evidence to support each prediction and are freelyavailable via and .
机译:尽管现在可以在几周内购买4亿种不同的化合物,但大多数的生物活性尚不清楚。为了促进获取生物学新化学方法,我们将相似性集成方法(SEA)与最大的Tanimoto相似性与最近的生物活性剂相结合,以预测ZINC中每个可商购分子的活性。我们将这种方法标记为SEA + TC,通过对ChEMBL的生物活性数据集(21版)进行5倍交叉验证的预测性能,胜过SEA和朴素的贝叶斯分类器。使用这种方法,对于1382个由配体中的配体很好描述的目标中的一个或多个目标,预测超过40%的化合物(> 1.6亿)具有高显着性(pSEA≥40),高相似性(ECFP4MaxTc≥0.4)或两者都有。文献。使用另外1347个描述欠佳的目标,我们预测了另外1100万种化合物的活性。为了评估这些预测是否合理,我们调查了50种药物缺乏的75种预测。ChEMBL中的绑定亲和力注释。 5.35亿个预测在2629个目标上有超过1.71亿个化合物与购买支持每种预测的信息和证据,并且是自由的可通过和获得。

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