Cargando…

Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release

INTRODUCTION: Cognitive dysfunction is the most common problem of patients with Alzheimer Disease (AD). The pathological mechanism of cognitive impairment in AD may contribute to neuronal loss, synaptic dysfunction, and alteration in neurotransmitters receptors. Mitochondrial synapses dysfunction du...

Descripción completa

Detalles Bibliográficos
Autores principales: Nikbakht, Farnaz, Khadem, Yasaman, Haghani, Sobhan, Hoseininia, Hadiseh, Moein Sadat, Alireza, Heshemi, Paria, Jamali, Nida
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Iranian Neuroscience Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7253805/
https://www.ncbi.nlm.nih.gov/pubmed/32477473
http://dx.doi.org/10.32598/BCN.9.10.385
_version_ 1783539403485872128
author Nikbakht, Farnaz
Khadem, Yasaman
Haghani, Sobhan
Hoseininia, Hadiseh
Moein Sadat, Alireza
Heshemi, Paria
Jamali, Nida
author_facet Nikbakht, Farnaz
Khadem, Yasaman
Haghani, Sobhan
Hoseininia, Hadiseh
Moein Sadat, Alireza
Heshemi, Paria
Jamali, Nida
author_sort Nikbakht, Farnaz
collection PubMed
description INTRODUCTION: Cognitive dysfunction is the most common problem of patients with Alzheimer Disease (AD). The pathological mechanism of cognitive impairment in AD may contribute to neuronal loss, synaptic dysfunction, and alteration in neurotransmitters receptors. Mitochondrial synapses dysfunction due to the accumulation of Amyloid Beta (Aβ) is one of the earliest pathological features of AD. The flavone apigenin has been reported to play some protective roles in AD through the anti-oxidative and anti-inflammatory properties. This study aimed at investigating the effects of apigenin on spatial working memory and neural protection by restoring mitochondrial dysfunction and inhibition of caspase 9. METHODS: Intracerebroventricular (ICV) microinjection of Aβ 25–35 was used for AD modeling. Working memory was assessed 21 days later using the Y maze test. Neuronal loss was detected in the hilar area of the hippocampus using Nissl and Fluoro-jade B staining, whereas immunohistochemistry was used to illustrate cytochrome c positive cells and caspase 9. RESULTS: The results revealed that apigenin significantly ameliorated spatial working memory. It also significantly reduced the number of degenerative neurons in the hilus area. Apigenin almost completely blocked the release of cytochrome c and caspase 9 in hilus. CONCLUSION: Apigenin may improve the spatial working memory deficits and neuronal degeneration through the amelioration of the mitochondrial dysfunction.
format Online
Article
Text
id pubmed-7253805
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher Iranian Neuroscience Society
record_format MEDLINE/PubMed
spelling pubmed-72538052020-05-28 Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release Nikbakht, Farnaz Khadem, Yasaman Haghani, Sobhan Hoseininia, Hadiseh Moein Sadat, Alireza Heshemi, Paria Jamali, Nida Basic Clin Neurosci Research Paper INTRODUCTION: Cognitive dysfunction is the most common problem of patients with Alzheimer Disease (AD). The pathological mechanism of cognitive impairment in AD may contribute to neuronal loss, synaptic dysfunction, and alteration in neurotransmitters receptors. Mitochondrial synapses dysfunction due to the accumulation of Amyloid Beta (Aβ) is one of the earliest pathological features of AD. The flavone apigenin has been reported to play some protective roles in AD through the anti-oxidative and anti-inflammatory properties. This study aimed at investigating the effects of apigenin on spatial working memory and neural protection by restoring mitochondrial dysfunction and inhibition of caspase 9. METHODS: Intracerebroventricular (ICV) microinjection of Aβ 25–35 was used for AD modeling. Working memory was assessed 21 days later using the Y maze test. Neuronal loss was detected in the hilar area of the hippocampus using Nissl and Fluoro-jade B staining, whereas immunohistochemistry was used to illustrate cytochrome c positive cells and caspase 9. RESULTS: The results revealed that apigenin significantly ameliorated spatial working memory. It also significantly reduced the number of degenerative neurons in the hilus area. Apigenin almost completely blocked the release of cytochrome c and caspase 9 in hilus. CONCLUSION: Apigenin may improve the spatial working memory deficits and neuronal degeneration through the amelioration of the mitochondrial dysfunction. Iranian Neuroscience Society 2019 2019-11-01 /pmc/articles/PMC7253805/ /pubmed/32477473 http://dx.doi.org/10.32598/BCN.9.10.385 Text en Copyright© 2019 Iranian Neuroscience Society http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Nikbakht, Farnaz
Khadem, Yasaman
Haghani, Sobhan
Hoseininia, Hadiseh
Moein Sadat, Alireza
Heshemi, Paria
Jamali, Nida
Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title_full Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title_fullStr Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title_full_unstemmed Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title_short Protective Role of Apigenin Against Aβ 25–35 Toxicity Via Inhibition of Mitochondrial Cytochrome c Release
title_sort protective role of apigenin against aβ 25–35 toxicity via inhibition of mitochondrial cytochrome c release
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7253805/
https://www.ncbi.nlm.nih.gov/pubmed/32477473
http://dx.doi.org/10.32598/BCN.9.10.385
work_keys_str_mv AT nikbakhtfarnaz protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT khademyasaman protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT haghanisobhan protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT hoseininiahadiseh protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT moeinsadatalireza protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT heshemiparia protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease
AT jamalinida protectiveroleofapigeninagainstab2535toxicityviainhibitionofmitochondrialcytochromecrelease