Design, synthesis and bioevaluation of tricyclic fused ring system as dual binding site acetylcholinesterase inhibitors

Bioorg Chem. 2019 Mar:83:336-347. doi: 10.1016/j.bioorg.2018.10.035. Epub 2018 Oct 23.

Abstract

Due to recently discovered non-classical acetylcholinesterase (AChE) function, dual binding-site AChE inhibitors have acquired a paramount attention of drug designing researchers. The unique structural arrangements of AChE peripheral anionic site (PAS) and catalytic site (CAS) joined by a narrow gorge, prompted us to design the inhibitors that can interact with dual binding sites of AChE. Eighteen homo- and heterodimers of desloratadine and carbazole (already available tricyclic building blocks) were synthesized and tested for their inhibition potential against electric eel acetylcholinesterase (eeAChE) and equine serum butyrylcholinesterase (eqBChE). We identified a six-carbon tether heterodimer of desloratadine and indanedione based tricyclic dihydropyrimidine (4c) as potent and selective inhibitor of eeAChE with IC50 value of 0.09 ± 0.003 μM and 1.04 ± 0.08 μM (for eqBChE) with selectivity index of 11.1. Binding pose analysis of potent inhibitors suggest that tricyclic ring is well accommodated into the AChE active site through hydrophobic interactions with Trp84 and Trp279. The indanone ring of most active heterodimer 4b is stabilized into the bottom of the gorge and forms hydrogen bonding interactions with the important catalytic triad residue Ser200.

Keywords: Butyrylcholinesterase; Desloratadine; Dual binding site inhibitors; Nonclassical AChE function; Tricyclic fused rings.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acetylcholinesterase / chemistry
  • Acetylcholinesterase / metabolism
  • Animals
  • Carbazoles / chemical synthesis
  • Carbazoles / chemistry*
  • Carbazoles / metabolism
  • Catalytic Domain
  • Cholinesterase Inhibitors / chemical synthesis
  • Cholinesterase Inhibitors / chemistry*
  • Cholinesterase Inhibitors / metabolism
  • Drug Design
  • Electrophorus
  • Hydrogen Bonding
  • Loratadine / analogs & derivatives*
  • Loratadine / chemical synthesis
  • Loratadine / chemistry
  • Loratadine / metabolism
  • Protein Binding
  • Static Electricity
  • Torpedo

Substances

  • Carbazoles
  • Cholinesterase Inhibitors
  • Loratadine
  • Acetylcholinesterase
  • desloratadine