Jacoby Edgar, Brown J B
Janssen Research & Development, Beerse, Belgium.
Life Science Informatics Research Unit, Laboratory of Molecular Biosciences, Kyoto University Graduate School of Medicine, Kyoto, Japan.
Methods Mol Biol. 2018;1825:425-450. doi: 10.1007/978-1-4939-8639-2_15.
Following the elucidation of the human genome, chemogenomics emerged in the beginning of the twenty-first century as an interdisciplinary research field with the aim to accelerate target and drug discovery by making best usage of the genomic data and the data linkable to it. What started as a systematization approach within protein target families now encompasses all types of chemical compounds and gene products. A key objective of chemogenomics is the establishment, extension, analysis, and prediction of a comprehensive SAR matrix which by application will enable further systematization in drug discovery. Herein we outline future perspectives of chemogenomics including the extension to new molecular modalities, or the potential extension beyond the pharma to the agro and nutrition sectors, and the importance for environmental protection. The focus is on computational sciences with potential applications for compound library design, virtual screening, hit assessment, analysis of phenotypic screens, lead finding and optimization, and systems biology-based prediction of toxicology and translational research.
随着人类基因组的阐明,化学基因组学在21世纪初作为一个跨学科研究领域出现,旨在通过充分利用基因组数据及其可关联的数据来加速靶点和药物发现。最初作为蛋白质靶点家族内的一种系统化方法,如今已涵盖所有类型的化合物和基因产物。化学基因组学的一个关键目标是建立、扩展、分析和预测一个全面的构效关系矩阵,通过应用该矩阵将能够在药物发现中实现进一步的系统化。在此,我们概述了化学基因组学的未来前景,包括向新分子模式的扩展,或从制药领域潜在扩展到农业和营养领域,以及对环境保护的重要性。重点是计算科学在化合物库设计、虚拟筛选、命中评估、表型筛选分析、先导化合物发现和优化以及基于系统生物学的毒理学预测和转化研究等方面的潜在应用。