首页> 外文期刊>Current topics in medicinal chemistry >Chemogenomics approaches for receptor deorphanization and extensions of the chemogenomics concept to phenotypic space.
【24h】

Chemogenomics approaches for receptor deorphanization and extensions of the chemogenomics concept to phenotypic space.

机译:用于受体去孤儿化的化学基因组学方法以及将化学基因组学概念扩展到表型空间的方法。

获取原文
获取原文并翻译 | 示例
获取外文期刊封面目录资料

摘要

Chemogenomic approaches, which link ligand chemistry to bioactivity against targets (and, by extension, to phenotypes) are becoming more and more important due to the increasing number of bioactivity data available both in proprietary databases as well as in the public domain. In this article we review chemogenomics approaches applied in four different domains: Firstly, due to the relationship between protein targets from which an approximate relation between their respective bioactive ligands can be inferred, we investigate the extent to which chemogenomics approaches can be applied to receptor deorphanization. In this case it was found that by using knowledge about active compounds of related proteins, in 93% of all cases enrichment better than random could be obtained. Secondly, we analyze different cheminformatics analysis methods with respect to their behavior in chemogenomics studies, such as subgraph mining and Bayesian models. Thirdly, we illustrate how chemogenomics, in its particular flavor of 'proteochemometrics', can be applied to extrapolate bioactivity predictions from given data points to related targets. Finally, we extend the concept of 'chemogenomics' approaches, relating ligand chemistry to bioactivity against related targets, into phenotypic space which then falls into the area of 'chemical genomics' and 'chemical genetics'; given that this is very often the desired endpoint of approaches in not only the pharmaceutical industry, but also in academic probe discovery, this is often the endpoint the experimental scientist is most interested in.
机译:将配体化学与针对靶标的生物活性(进而扩展为表型)联系起来的化学基因组学方法变得越来越重要,这是因为专有数据库和公共领域中可用的生物活性数据越来越多。在本文中,我们回顾了在四个不同领域中应用的化学基因组学方法:首先,由于蛋白质靶点之间的关系可以从中推断出它们各自生物活性配体之间的近似关系,因此我们研究了化学基因组学方法可以应用于受体去孤儿化的程度。在这种情况下,发现通过利用有关相关蛋白质活性化合物的知识,在所有情况下的93%中,可以获得比随机性更好的富集。其次,针对化学基因组学研究中的行为,我们分析了不同的化学信息学分析方法,例如子图挖掘和贝叶斯模型。第三,我们说明了化学基因组学如何以其特殊的“蛋白质化学计量学”形式应用于从给定数据点到相关目标的生物活性预测。最后,我们将“化学基因组学”方法的概念扩展,将配体化学与针对相关靶标的生物活性相关联,进入表型空间,然后进入“化学基因组学”和“化学遗传学”领域。考虑到这不仅是制药行业中方法的理想终点,而且在学术探针发现中也常常是该方法的理想终点,因此这通常是实验科学家最感兴趣的终点。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号