4.5 Article

Design of Multi-Target Compounds as AChE, BACE1, and Amyloid-β1-42 Oligomerization Inhibitors: In Silico and In Vitro Studies

Journal

JOURNAL OF ALZHEIMERS DISEASE
Volume 41, Issue 4, Pages 1073-1085

Publisher

IOS PRESS
DOI: 10.3233/JAD-140471

Keywords

Acetylcholinesterase; Alzheimer's disease; amyloid-beta; beta-site A beta PP cleaving enzyme 1; inhibitor

Categories

Funding

  1. CONACYT [84119, 132353]
  2. CYTED [214RT0482]
  3. PIFI-SIP-COFAA-IPN
  4. MEDIX [SIP2014-RE-014]
  5. [ICyTDF/1276/2011]
  6. [ICyTDF/42/2012]
  7. [SIP20131045]
  8. [SIP20140252]

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Despite great efforts to develop new therapeutic strategies against Alzheimer's disease (AD), the acetylcholinesterase inhibitors (AChEIs): donepezil, rivastigmine, and galantamine, have been used only as a palliative therapeutic approach. However, the pathogenesis of AD includes several factors such as cholinergic hypothesis, amyloid-beta (A beta) aggregation, and oxidative stress. For this reason, the design of compounds that target the genesis and progression of AD could offer a therapeutic benefit. We have designed a set of compounds (M-1 to M-5) with pharmacophore moieties to inhibit the release, aggregation, or toxicity of A beta, act as AChEIs and have antioxidant properties. Once the compounds were designed, we analyzed their physicochemical parameters and performed docking studies to determine their affinity values for AChE, beta-site amyloid-protein precursor cleaving enzyme 1 (BACE1), and the A beta monomer. The best ligands, M-1 and M-4, were then synthesized, chemically characterized, and evaluated in vitro. The in vitro studies showed that these compounds inhibit AChE (M-1 K-i = 0.12 and M-4 K-i = 0.17 mu M) and BACE1 (M-1 IC50 = 15.1 and M-4 IC50 = 15.4 nM). They also inhibit A beta oligomerization and exhibit antioxidant activity. In addition, these compounds showed low cytotoxicity in microglial cells. For these reasons, they are promising for future use as drugs in AD mice transgenic models.

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