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Apigenin Attenuates Hippocampal Microglial Activation and Restores Cognitive Function in Methotrexate-Treated Rats: Targeting the miR-15a/ROCK-1/ERK1/2 Pathway
by
Eldemerdash, Omar Mohsen
, Soliman, Ayman S.
, Senousy, Mahmoud Ahmed
, Yousef, Einas Mohamed
, Taha, Mohamed
, Elshaffei, Ismail Mohamed
in
Adaptor proteins
/ Animals
/ Apigenin - metabolism
/ Apigenin - pharmacology
/ Apigenin - therapeutic use
/ Apoptosis
/ Biomedical and Life Sciences
/ Biomedicine
/ Brain-derived neurotrophic factor
/ Brain-Derived Neurotrophic Factor - metabolism
/ Caspase-3
/ Cell Biology
/ Cognition
/ Cognitive ability
/ Cyclic AMP response element-binding protein
/ Extracellular signal-regulated kinase
/ Flavonoids
/ Glutathione
/ Hippocampus
/ Hippocampus - metabolism
/ Inflammation
/ Kinases
/ Male
/ MAP Kinase Signaling System
/ Methotrexate
/ Methotrexate - metabolism
/ Methotrexate - toxicity
/ Microglia - metabolism
/ MicroRNAs - metabolism
/ Mitogen-Activated Protein Kinase 3 - metabolism
/ Neurobiology
/ Neuroinflammatory Diseases
/ Neurology
/ Neuroprotection
/ Neurosciences
/ Neurotoxicity
/ Oxidative stress
/ Pattern recognition
/ Phosphorylation
/ Proteins
/ Rats
/ Rats, Sprague-Dawley
2023
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Apigenin Attenuates Hippocampal Microglial Activation and Restores Cognitive Function in Methotrexate-Treated Rats: Targeting the miR-15a/ROCK-1/ERK1/2 Pathway
by
Eldemerdash, Omar Mohsen
, Soliman, Ayman S.
, Senousy, Mahmoud Ahmed
, Yousef, Einas Mohamed
, Taha, Mohamed
, Elshaffei, Ismail Mohamed
in
Adaptor proteins
/ Animals
/ Apigenin - metabolism
/ Apigenin - pharmacology
/ Apigenin - therapeutic use
/ Apoptosis
/ Biomedical and Life Sciences
/ Biomedicine
/ Brain-derived neurotrophic factor
/ Brain-Derived Neurotrophic Factor - metabolism
/ Caspase-3
/ Cell Biology
/ Cognition
/ Cognitive ability
/ Cyclic AMP response element-binding protein
/ Extracellular signal-regulated kinase
/ Flavonoids
/ Glutathione
/ Hippocampus
/ Hippocampus - metabolism
/ Inflammation
/ Kinases
/ Male
/ MAP Kinase Signaling System
/ Methotrexate
/ Methotrexate - metabolism
/ Methotrexate - toxicity
/ Microglia - metabolism
/ MicroRNAs - metabolism
/ Mitogen-Activated Protein Kinase 3 - metabolism
/ Neurobiology
/ Neuroinflammatory Diseases
/ Neurology
/ Neuroprotection
/ Neurosciences
/ Neurotoxicity
/ Oxidative stress
/ Pattern recognition
/ Phosphorylation
/ Proteins
/ Rats
/ Rats, Sprague-Dawley
2023
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Apigenin Attenuates Hippocampal Microglial Activation and Restores Cognitive Function in Methotrexate-Treated Rats: Targeting the miR-15a/ROCK-1/ERK1/2 Pathway
by
Eldemerdash, Omar Mohsen
, Soliman, Ayman S.
, Senousy, Mahmoud Ahmed
, Yousef, Einas Mohamed
, Taha, Mohamed
, Elshaffei, Ismail Mohamed
in
Adaptor proteins
/ Animals
/ Apigenin - metabolism
/ Apigenin - pharmacology
/ Apigenin - therapeutic use
/ Apoptosis
/ Biomedical and Life Sciences
/ Biomedicine
/ Brain-derived neurotrophic factor
/ Brain-Derived Neurotrophic Factor - metabolism
/ Caspase-3
/ Cell Biology
/ Cognition
/ Cognitive ability
/ Cyclic AMP response element-binding protein
/ Extracellular signal-regulated kinase
/ Flavonoids
/ Glutathione
/ Hippocampus
/ Hippocampus - metabolism
/ Inflammation
/ Kinases
/ Male
/ MAP Kinase Signaling System
/ Methotrexate
/ Methotrexate - metabolism
/ Methotrexate - toxicity
/ Microglia - metabolism
/ MicroRNAs - metabolism
/ Mitogen-Activated Protein Kinase 3 - metabolism
/ Neurobiology
/ Neuroinflammatory Diseases
/ Neurology
/ Neuroprotection
/ Neurosciences
/ Neurotoxicity
/ Oxidative stress
/ Pattern recognition
/ Phosphorylation
/ Proteins
/ Rats
/ Rats, Sprague-Dawley
2023
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Apigenin Attenuates Hippocampal Microglial Activation and Restores Cognitive Function in Methotrexate-Treated Rats: Targeting the miR-15a/ROCK-1/ERK1/2 Pathway
Journal Article
Apigenin Attenuates Hippocampal Microglial Activation and Restores Cognitive Function in Methotrexate-Treated Rats: Targeting the miR-15a/ROCK-1/ERK1/2 Pathway
2023
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Overview
Microglial activation underpins the methotrexate (MTX)-induced neurotoxicity; however, the precise mechanism remains unclear. This study appraised the potential impact of apigenin (Api), a neuroprotective flavonoid, in MTX-induced neurotoxicity in rats in terms of microglial activation through targeting the miR-15a/Rho-associated protein kinase-1 (ROCK-1)/extracellular signal-regulated kinase 1/2 (ERK1/2) pathway. Male Sprague Dawley rats were randomly divided into 4 groups: Normal control (saline i.p. daily and i.v. on days 8 and 15); Api control (20 mg/kg, p.o.) daily for 30 days; MTX-alone (75 mg/kg, i.v.) on days 8 and 15, then four i.p. injections of leucovorin (LCV): 6 mg/kg after 18 h, then three doses (3 mg/kg) every 8 h post-MTX; and Api co-treated (20 mg/kg/day, p.o.) throughout the model for 30 days, with administration of MTX and LCV as in group 3. MTX administration elevated hippocampal ionized calcium-binding adaptor protein-1 (Iba-1) immunostaining, indicating microglial activation. This was accompanied by neuroinflammation, oxidative stress, and enhanced apoptosis manifested by elevated hippocampal interleukin-1β, malondialdehyde, and caspase-3, and decreased reduced glutathione levels. Concurrently, abated miR-15a expression, overexpression of its target ROCK-1, diminished downstream ERK1/2 and cAMP response element-binding protein (CREB) phosphorylation, and decreased hippocampal brain-derived neurotrophic factor (BDNF) levels were observed. Api mitigated the MTX-induced neurotoxicity by reversing the biochemical, histopathological, and behavioral derangements tested by novel object recognition and Morris water maze tests. Conclusively, Api lessens MTX-induced neuroinflammation, oxidative stress, and apoptosis and boosts cognitive function through inhibiting microglial activation via modulating the miR-15a/ROCK-1/ERK1/2/CREB/BDNF pathway.
Graphical Abstract
Graphical abstract showing the effects of methotrexate and apigenin co-treatment in MTX-induced neurotoxicity model.
On the left, methotrexate (MTX) administration to rats resulted in hippocampal miR-15a downregulation, which triggered an enhanced expression of its target ROCK-1, consequently inhibiting the downstream ERK1/2/CREB/BDNF pathway, instigating a state of microglial activation, neuroinflammation, oxidative stress, and apoptosis. On the other hand, apigenin (Api) co-treatment restored miR-15a, inhibited ROCK-1 expression, and activated the ERK1/2/CREB/BDNF pathway, leading to diminished hippocampal microglial activation, neuroinflammation, and apoptosis, and restoration of the redox balance, along with improvement in memory and cognitive function of the MTX-treated rats.
Publisher
Springer US,Springer Nature B.V
Subject
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