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2000
Volume 12, Issue 10
  • ISSN: 1389-5575
  • E-ISSN: 1875-5607

Abstract

The adjustment of multiple criteria in hit-to-lead identification and lead optimization is a major advance in drug discovery. Thus, the development of approaches able to handle additional criteria for the early simultaneous treatment of the most important properties determining the pharmaceutical profile of a drug candidate is an emergent issue in this area. In this paper, we review a desirability-based multi-objective QSAR method allowing the joint handling of multiple properties of interest in drug discovery: the MOOP-DESIRE methodology. This methodology adapts desirability theory concepts allowing the holistic modeling of the many and conflicting biological properties determining the therapeutic utility of a drug candidate. Here we survey their suitability for key tasks involving the use of chemoinformatics methods in medicinal chemistry and drug discovery.

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/content/journals/mrmc/10.2174/138955712802762329
2012-09-01
2025-01-14
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/content/journals/mrmc/10.2174/138955712802762329
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  • Article Type:
    Research Article
Keyword(s): desirability theory; drug discovery; MOOP-DESIRE methodology; multi-objective QSAR
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