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Privileged substructures for anti-sickling activity via cheminformatic analysis

机译:通过化学信息学分析获得的优先抗渗析活性子结构

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Sickle cell disease (SCD), an autosomal recessive genetic disorder, has been recognized by the World Health Organization (WHO) as a major public health problem as it affects 300?000 individuals worldwide. Complications arising from SCD include anemia, microvascular occlusion, severe pain, stokes, renal dysfunction and infections. A lucrative therapeutic strategy is to employ anti-sickling agents that can disrupt the formation of the HbS polymer. This study therefore employed cheminformatic approaches, encompassing classification structure–activity relationship (CSAR) modeling, to deduce the privileged substructures giving rise to the anti-sickling activity of an investigated set of 115 compounds, followed by substructure analysis. Briefly, the compiled compounds were described by fingerprint descriptors and used in the construction of CSAR models via several machine learning algorithms. The modelability of the data set, as exemplified by the MODI index, was determined to be in the range of 0.70–0.84. The predictive performance was deduced by the accuracy, sensitivity, specificity and Matthews correlation coefficient, which was found to be statistically robust, whereby the former three parameters afforded values in excess of 0.7 while the latter statistical parameter provided a value greater than 0.5. An analysis of the top 20 important substructure descriptors for anti-sickling activity revealed that 10 important features were significant in the differentiation of actives from inactives, as illustrated by aromaticity/conjugation ( e.g. SubFPC287, SubFPC171 and SubFPC5), carbonyl groups ( e.g. SubFPC137, SubFPC139, SubFPC49 and SubFPC135) and miscellaneous groups ( e.g. SubFPC303, SubFPC302 and SubFPC275). Furthermore, an analysis of the structure–activity relationship revealed that the length of alkyl chains, choice of functional moiety and position of substitution on the benzene ring may affect the anti-sickling activity of these compounds. Thus, this knowledge is anticipated to be useful for guiding the design of robust compounds against the gelling activity of HbS, as preliminarily demonstrated in the data-driven compound design presented herein.
机译:镰状细胞病(SCD)是一种常染色体隐性遗传疾病,已被世界卫生组织(WHO)确认为主要的公共卫生问题,因为它影响全球300,000个人。 SCD引起的并发症包括贫血,微血管阻塞,严重疼痛,中风,肾功能不全和感染。有利可图的治疗策略是使用抗溶血剂,这些物质可以破坏HbS聚合物的形成。因此,本研究采用化学信息学方法,包括分类结构-活性关系(CSAR)建模,推论特权子结构,从而产生了一组115种化合物的抗镰刀菌活性,然后进行了子结构分析。简而言之,通过指纹描述符描述了编译的化合物,并通过几种机器学习算法将其用于CSAR模型的构建。以MODI指数为例,该数据集的可建模性被确定在0.70–0.84的范围内。预测性能由准确性,敏感性,特异性和Matthews相关系数推导得出,据统计,该系数具有统计学上的稳健性,其中前三个参数提供的值超过0.7,而后者统计参数提供的值大于0.5。对抗镰刀菌活性的前20个重要亚结构描述符进行分析后发现,芳香族/共轭(例如SubFPC287,SubFPC171和SubFPC5),羰基(例如SubFPC137, SubFPC139,SubFPC49和SubFPC135)以及其他组(例如SubFPC303,SubFPC302和SubFPC275)。此外,对结构-活性关系的分析表明,烷基链的长度,功能部分的选择以及苯环上取代基的位置可能会影响这些化合物的抗ick活性。因此,预期该知识可用于指导针对HbS胶凝活性的稳健化合物的设计,如本文所述的数据驱动化合物设计中初步证明的那样。

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