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Galileo: Three-dimensional searching in large combinatorial fragment spaces on the example of pharmacophores.

Christian MeyenburgUschi DolfusHans BriemMatthias Rarey
Published in: Journal of computer-aided molecular design (2022)
Fragment spaces are an efficient way to model large chemical spaces using a handful of small fragments and a few connection rules. The development of Enamine's REAL Space has shown that large spaces of readily available compounds may be created this way. These are several orders of magnitude larger than previous libraries. So far, searching and navigating these spaces is mostly limited to topological approaches. A way to overcome this limitation is optimization via metaheuristics which can be combined with arbitrary scoring functions. Here we present Galileo, a novel Genetic Algorithm to sample fragment spaces. We showcase Galileo in combination with a novel pharmacophore mapping approach, called Phariety, enabling 3D searches in fragment spaces. We estimate the effectiveness of the approach with a small fragment space. Furthermore, we apply Galileo to two pharmacophore searches in the REAL Space, detecting hundreds of compounds fulfilling a HSP90 and a FXIa pharmacophore.
Keyphrases
  • molecular docking
  • molecular dynamics
  • randomized controlled trial
  • systematic review
  • gene expression
  • deep learning
  • genome wide
  • heat shock protein
  • dna methylation
  • mass spectrometry
  • copy number
  • heat shock