Selective Targeting of Non-nuclear Estrogen Receptors with PaPE-1 as a New Treatment Strategy for Alzheimer's Disease.


Journal

Neurotoxicity research
ISSN: 1476-3524
Titre abrégé: Neurotox Res
Pays: United States
ID NLM: 100929017

Informations de publication

Date de publication:
Dec 2020
Historique:
received: 07 08 2020
accepted: 16 09 2020
revised: 15 09 2020
pubmed: 8 10 2020
medline: 21 8 2021
entrez: 7 10 2020
Statut: ppublish

Résumé

Alzheimer's disease (AD) is a multifactorial and severe neurodegenerative disorder characterized by progressive memory decline, the presence of Aβ plaques and tau tangles, brain atrophy, and neuronal loss. Available therapies provide moderate symptomatic relief but do not alter disease progression. This study demonstrated that PaPE-1, which has been designed to selectively activate non-nuclear estrogen receptors (ERs), has anti-AD capacity, as evidenced in a cellular model of the disease. In this model, the treatment of mouse neocortical neurons with Aβ (5 and 10 μM) induced apoptosis (loss of mitochondrial membrane potential, activation of caspase-3, induction of apoptosis-related genes and proteins) accompanied by increases in levels of reactive oxygen species (ROS) and lactate dehydrogenase (LDH) as well as reduced cell viability. Following 24 h of exposure, PaPE-1 inhibited Aβ-evoked effects, as shown by reduced parameters of neurotoxicity, oxidative stress, and apoptosis. Because PaPE-1 downregulated Aβ-induced Fas/FAS expression but upregulated that of Aβ-induced FasL, the role of PaPE-1 in controlling the external apoptotic pathway is controversial. However, PaPE-1 normalized Aβ-induced loss of mitochondrial membrane potential and restored the BAX/BCL2 ratio, suggesting that the anti-AD capacity of PaPE-1 particularly relies on inhibition of the mitochondrial apoptotic pathway. These data provide new evidence for an anti-AD strategy that utilizes the selective targeting of non-nuclear ERs with PaPE-1.

Identifiants

pubmed: 33025361
doi: 10.1007/s12640-020-00289-8
pii: 10.1007/s12640-020-00289-8
pmc: PMC7591444
doi:

Substances chimiques

1-palmitoyl-2-arachidonyl-glycero-3-phosphoethanolamine 0
Amyloid beta-Peptides 0
Peptide Fragments 0
Phosphatidylethanolamines 0
Receptors, Estrogen 0
amyloid beta-protein (1-42) 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

957-966

Références

Front Neuroendocrinol. 2012 Jan;33(1):85-104
pubmed: 22079780
J Steroid Biochem Mol Biol. 2018 Sep;182:106-118
pubmed: 29704544
Sci Signal. 2016 May 24;9(429):ra53
pubmed: 27221711
Development. 2014 Jul;141(13):2543-8
pubmed: 24961795
J Alzheimers Dis. 2014;42(2):395-411
pubmed: 24898661
Neurobiol Dis. 2007 Jan;25(1):179-88
pubmed: 17067805
J Alzheimers Dis. 2016;51(2):391-403
pubmed: 26890746
Neurochem Res. 2017 Aug;42(8):2246-2256
pubmed: 28374135
Physiol Rev. 2010 Apr;90(2):465-94
pubmed: 20393191
Mol Neurobiol. 2018 Jun;55(6):5059-5074
pubmed: 28815487
Sci Total Environ. 2020 Nov 10;742:140599
pubmed: 32721735
Neurobiol Dis. 2003 Apr;12(3):182-93
pubmed: 12742739
Mol Neurobiol. 2018 Mar;55(3):2362-2383
pubmed: 28357806
Brain Res. 1995 Oct 30;697(1-2):35-43
pubmed: 8593592
Acta Neuropathol Commun. 2014 Sep 18;2:135
pubmed: 25231068
Mol Metab. 2018 Sep;15:56-69
pubmed: 29807870
J Pharmacol Sci. 2016 Jul;131(3):219-22
pubmed: 27423484
Mol Cell Endocrinol. 2018 Feb 5;461:64-78
pubmed: 28859903
Mol Neurobiol. 2019 Jul;56(7):4820-4837
pubmed: 30402708
Endocrinology. 2018 Nov 1;159(11):3848-3859
pubmed: 30256928
BMC Syst Biol. 2013 Jun 26;7:51
pubmed: 23803348
Mol Neurobiol. 2019 May;56(5):3113-3131
pubmed: 30097849
Brain Res. 1998 Jan 12;780(2):260-9
pubmed: 9507158
Neurobiol Aging. 1996 Jan-Feb;17(1):131-6
pubmed: 8786795
ACS Med Chem Lett. 2013 Feb 13;4(3):329-32
pubmed: 24900669
Front Neuroendocrinol. 2009 Jul;30(2):239-58
pubmed: 19427328

Auteurs

Agnieszka Wnuk (A)

Department of Experimental Neuroendocrinology, Laboratory of Molecular Neuroendocrinology, Maj Institute of Pharmacology, Polish Academy of Sciences, Smętna street 12, 31-343, Krakow, Poland. wnuk@if-pan.krakow.pl.

Karolina Przepiórska (K)

Department of Experimental Neuroendocrinology, Laboratory of Molecular Neuroendocrinology, Maj Institute of Pharmacology, Polish Academy of Sciences, Smętna street 12, 31-343, Krakow, Poland.

Joanna Rzemieniec (J)

Department of Experimental Neuroendocrinology, Laboratory of Molecular Neuroendocrinology, Maj Institute of Pharmacology, Polish Academy of Sciences, Smętna street 12, 31-343, Krakow, Poland.

Bernadeta Pietrzak (B)

Department of Experimental Neuroendocrinology, Laboratory of Molecular Neuroendocrinology, Maj Institute of Pharmacology, Polish Academy of Sciences, Smętna street 12, 31-343, Krakow, Poland.

Małgorzata Kajta (M)

Department of Experimental Neuroendocrinology, Laboratory of Molecular Neuroendocrinology, Maj Institute of Pharmacology, Polish Academy of Sciences, Smętna street 12, 31-343, Krakow, Poland.

Articles similaires

Robotic Surgical Procedures Animals Humans Telemedicine Models, Animal

Odour generalisation and detection dog training.

Lyn Caldicott, Thomas W Pike, Helen E Zulch et al.
1.00
Animals Odorants Dogs Generalization, Psychological Smell
Animals TOR Serine-Threonine Kinases Colorectal Neoplasms Colitis Mice
Animals Tail Swine Behavior, Animal Animal Husbandry

Classifications MeSH