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PockDrug-Server: a new web server for predicting pocket druggability on holo and apo proteins

机译:PockDrug-Server:一种新的Web服务器用于预测全息蛋白和载脂蛋白的袋装药物作用

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摘要

Predicting protein pocket's ability to bind drug-like molecules with high affinity, i.e. druggability, is of major interest in the target identification phase of drug discovery. Therefore, pocket druggability investigations represent a key step of compound clinical progression projects. Currently computational druggability prediction models are attached to one unique pocket estimation method despite pocket estimation uncertainties. In this paper, we propose ‘PockDrug-Server’ to predict pocket druggability, efficient on both (i) estimated pockets guided by the ligand proximity (extracted by proximity to a ligand from a holo protein structure) and (ii) estimated pockets based solely on protein structure information (based on amino atoms that form the surface of potential binding cavities). PockDrug-Server provides consistent druggability results using different pocket estimation methods. It is robust with respect to pocket boundary and estimation uncertainties, thus efficient using apo pockets that are challenging to estimate. It clearly distinguishes druggable from less druggable pockets using different estimation methods and outperformed recent druggability models for apo pockets. It can be carried out from one or a set of apo/holo proteins using different pocket estimation methods proposed by our web server or from any pocket previously estimated by the user. PockDrug-Server is publicly available at: .
机译:预测蛋白质袋以高亲和力结合药物样分子的能力,即成药性,在药物发现的靶标鉴定阶段具有重大意义。因此,口袋可药物性研究代表了复合临床进展项目的关键步骤。尽管存在口袋估计的不确定性,但是当前可计算的药物可预测性模型附加到一种独特的口袋估计方法上。在本文中,我们提出了“ PockDrug-Server”来预测口袋的可药物性,这在(i)配体邻近度指导下估计的口袋(从完整蛋白质结构中与配体的邻近度提取)和(ii)仅基于口袋的估计口袋均有效关于蛋白质结构的信息(基于形成潜在结合腔表面的氨基原子)。 PockDrug-Server使用不同的口袋估算方法可提供一致的可药物性结果。它在口袋边界和估计不确定性方面很强大,因此可以有效地使用难以估计的apo口袋。它使用不同的估计方法清楚地将可药物性和药物性较弱的口袋区分开来,并且优于最近的载脂蛋白口袋的可药物性模型。可以使用我们的网络服务器提出的不同口袋估计方法,从一个或一组载脂蛋白/全脂蛋白中进行,也可以从用户先前估计的任何口袋中进行。 PockDrug-Server在以下位置公开可用。

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