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Exploiting the Chalcone Scaffold to Develop Multifunctional Agents for Alzheimer's Disease.
Rampa, Angela; Bartolini, Manuela; Pruccoli, Letizia; Naldi, Marina; Iriepa, Isabel; Moraleda, Ignacio; Belluti, Federica; Gobbi, Silvia; Tarozzi, Andrea; Bisi, Alessandra.
Afiliación
  • Rampa A; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. angela.rampa@unibo.it.
  • Bartolini M; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. manuela.bartolini3@unibo.it.
  • Pruccoli L; Department for Life Quality Studies, Alma Mater Studiorum-University of Bologna, Corso d'Augusto 237, 47921 Rimini, Italy. letizia.pruccoli2@unibo.it.
  • Naldi M; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. marina.naldi@unibo.it.
  • Iriepa I; Department of Organic Chemistry and Inorganic Chemistry, School of Sciences, University of Alcalá, E-28871 Alcalá de Henares, Madrid, Spain. isabel.iriepa@uah.es.
  • Moraleda I; Department of Organic Chemistry and Inorganic Chemistry, School of Sciences, University of Alcalá, E-28871 Alcalá de Henares, Madrid, Spain. ignacio.moraleda@uah.es.
  • Belluti F; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. federica.belluti@unibo.it.
  • Gobbi S; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. silvia.gobbi@unibo.it.
  • Tarozzi A; Department for Life Quality Studies, Alma Mater Studiorum-University of Bologna, Corso d'Augusto 237, 47921 Rimini, Italy. andrea.tarozzi@unibo.it.
  • Bisi A; Department of Pharmacy and Biotechnology, Alma Mater Studiorum-University of Bologna, Via Belmeloro 6, 40126 Bologna, Italy. alessandra.bisi@unibo.it.
Molecules ; 23(8)2018 Jul 30.
Article en En | MEDLINE | ID: mdl-30061534
Alzheimer's disease still represents an untreated multifaceted pathology, and drugs able to stop or reverse its progression are urgently needed. In this paper, a series of naturally inspired chalcone-based derivatives were designed as structural simplification of our previously reported benzofuran lead compound, aiming at targeting both acetyl (AChE)- and butyryl (BuChE) cholinesterases that, despite having been studied for years, still deserve considerable attention. In addition, the new compounds could also modulate different pathways involved in disease progression, due to the peculiar trans-α,ß-unsaturated ketone in the chalcone framework. All molecules presented in this study were evaluated for cholinesterase inhibition on the human enzymes and for antioxidant and neuroprotective activities on a SH-SY5Y cell line. The results proved that almost all the new compounds were low micromolar inhibitors, showing different selectivity depending on the appended substituent; some of them were also effective antioxidant and neuroprotective agents. In particular, compound 4, endowed with dual AChE/BuChE inhibitory activity, was able to decrease ROS formation and increase GSH levels, resulting in enhanced antioxidant endogenous defense. Moreover, this compound also proved to counteract the neurotoxicity elicited by Aß1⁻42 oligomers, showing a promising neuroprotective potential.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Acetilcolinesterasa / Butirilcolinesterasa / Inhibidores de la Colinesterasa / Nootrópicos / Fármacos Neuroprotectores / Chalconas / Antioxidantes Idioma: En Revista: Molecules Asunto de la revista: BIOLOGIA Año: 2018 Tipo del documento: Article País de afiliación: Italia

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Acetilcolinesterasa / Butirilcolinesterasa / Inhibidores de la Colinesterasa / Nootrópicos / Fármacos Neuroprotectores / Chalconas / Antioxidantes Idioma: En Revista: Molecules Asunto de la revista: BIOLOGIA Año: 2018 Tipo del documento: Article País de afiliación: Italia