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  2. Structure-based design of multitargeting ChEs-MAO B inhibitors based on phenyl ring bioisosteres: AChE/BChE selectivity switch and drug-like characterization

Structure-based design of multitargeting ChEs-MAO B inhibitors based on phenyl ring bioisosteres: AChE/BChE selectivity switch and drug-like characterization

  • Eur J Med Chem. 2024 Aug 5:274:116511. doi: 10.1016/j.ejmech.2024.116511.
Gabriella La Spada 1 Daniela Valeria Miniero 2 Mariagrazia Rullo 1 Marco Cipolloni 3 Pietro Delre 4 Carolina Colliva 3 Marco Colella 1 Francesco Leonetti 1 Grazia Maria Liuzzi 2 Giuseppe Felice Mangiatordi 4 Nicola Giacchè 3 Leonardo Pisani 5
Affiliations

Affiliations

  • 1 Dept. of Pharmacy-Pharmaceutical Sciences, University of Bari Aldo Moro, via E. Orabona 4, 70125, Bari, Italy.
  • 2 Dept. of Biosciences, Biotechnologies and Environment, University of Bari Aldo Moro, Via E. Orabona 4, 70125, Bari, Italy.
  • 3 Tes Pharma s.r.l., via Palmiro Togliatti 20, 06073, Corciano, PG, Italy.
  • 4 CNR, Institute of Crystallography, 70126, Bari, Italy.
  • 5 Dept. of Pharmacy-Pharmaceutical Sciences, University of Bari Aldo Moro, via E. Orabona 4, 70125, Bari, Italy. Electronic address: leonardo.pisani@uniba.it.
Abstract

A structure-based drug design approach was focused on incorporating phenyl ring heterocyclic bioisosteres into coumarin derivative 1, previously reported as potent dual AChE-MAO B inhibitor, with the aim of improving drug-like features. Structure-activity relationships highlighted that bioisosteric rings were tolerated by hMAO B enzymatic cleft more than hAChE. Interestingly, linker homologation at the basic nitrogen enabled selectivity to switch from hAChE to hBChE. In the present work, we identified thiophene-based isosteres 7 and 15 as dual AChE-MAO B (IC50 = 261 and 15 nM, respectively) and BChE-MAO B (IC50 = 375 and 20 nM, respectively) inhibitors, respectively. Both 7 and 15 were moderately water-soluble and membrane-permeant agents by passive diffusion (PAMPA-HDM). Moreover, they were able to counteract oxidative damage induced by both H2O2 and 6-OHDA in SH-SY5Y cells and predicted to penetrate into CNS in a cell-based model mimicking blood-brain barrier. Molecular dynamics (MD) simulations shed light on key differences in AChE and BChE recognition processes promoted by the basic chain homologation from 7 to 15.

Keywords

Acetylcholinesterase; Bioisostere; Butyrylcholinesterase; Monoamine oxidases; Multitarget; Structure-based.

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