Preclinical Evaluation of an Imidazole-Linked Heterocycle for Alzheimer's Disease.
Andrea BagánSergio Rodriguez-ArévaloTeresa TaboadaChristian Griñán-FerréMercé PallàsIria Brocos-MosqueraLuis F CalladoJose Ángel Morales-GarcíaBelén PérezCaridad DiazRosario Fernández-GodinoOlga GenilloudMilan BeljkasSlavica OljacicKatarina NikolicCarmen EscolanoPublished in: Pharmaceutics (2023)
Humanity is facing a vast prevalence of neurodegenerative diseases, with Alzheimer's disease (AD) being the most dominant, without efficacious drugs, and with only a few therapeutic targets identified. In this scenario, we aim to find molecular entities that modulate imidazoline I 2 receptors (I 2 -IRs) that have been pointed out as relevant targets in AD. In this work, we explored structural modifications of well-established I 2 -IR ligands, giving access to derivatives with an imidazole-linked heterocycle as a common key feature. We report the synthesis, the affinity in human I 2 -IRs, the brain penetration capabilities, the in silico ADMET studies, and the three-dimensional quantitative structure-activity relationship (3D-QSAR) studies of this new bunch of I 2 -IR ligands. Selected compounds showed neuroprotective properties and beneficial effects in an in vitro model of Parkinson's disease, rescued the human dopaminergic cell line SH-SY5Y from death after treatment with 6-hydroxydopamine, and showed crucial anti-inflammatory effects in a cellular model of neuroinflammation. After a preliminary pharmacokinetic study, we explored the action of our representative 2-(benzo[ b ]thiophen-2-yl)-1 H -imidazole LSL33 in a mouse model of AD (5xFAD). Oral administration of LSL33 at 2 mg/Kg for 4 weeks ameliorated 5XFAD cognitive impairment and synaptic plasticity, as well as reduced neuroinflammation markers. In summary, this new I 2 -IR ligand that promoted beneficial effects in a well-established AD mouse model should be considered a promising therapeutic strategy for neurodegeneration.
Keyphrases
- mouse model
- cognitive impairment
- structure activity relationship
- endothelial cells
- molecular docking
- cerebral ischemia
- traumatic brain injury
- induced pluripotent stem cells
- machine learning
- risk factors
- lipopolysaccharide induced
- pluripotent stem cells
- lps induced
- stem cells
- multiple sclerosis
- high resolution
- brain injury
- white matter
- functional connectivity
- cell therapy
- blood brain barrier
- mild cognitive impairment