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Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways

Excessive microglial activation and subsequent neuroinflammation lead to synaptic loss and dysfunction as well as neuronal cell death, which are involved in the pathogenesis and progression of several neurodegenerative diseases. Thus, the regulation of microglial activation has been evaluated as eff...

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Autores principales: Cui, Yanji, Park, Jee-Yun, Wu, Jinji, Lee, Ji Hyung, Yang, Yoon-Sil, Kang, Moon-Seok, Jung, Sung-Cherl, Park, Joo Min, Yoo, Eun-Sook, Kim, Seong-Ho, Ahn Jo, Sangmee, Suk, Kyoungho, Eun, Su-Yong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Physiological Society and The Korean Society of Pharmacology 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4422961/
https://www.ncbi.nlm.nih.gov/pubmed/25954126
http://dx.doi.org/10.4196/kjpp.2015.19.3.219
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author Cui, Yanji
Park, Jee-Yun
Wu, Jinji
Lee, Ji Hyung
Yang, Yoon-Sil
Kang, Moon-Seok
Jung, Sung-Cherl
Park, Joo Min
Yoo, Eun-Sook
Kim, Seong-Ho
Ahn Jo, Sangmee
Suk, Kyoungho
Eun, Su-Yong
author_facet Cui, Yanji
Park, Jee-Yun
Wu, Jinji
Lee, Ji Hyung
Yang, Yoon-Sil
Kang, Moon-Seok
Jung, Sung-Cherl
Park, Joo Min
Yoo, Eun-Sook
Kim, Seong-Ho
Ahn Jo, Sangmee
Suk, Kyoungho
Eun, Su-Yong
author_sort Cui, Yanji
collection PubMed
description Excessive microglial activation and subsequent neuroinflammation lead to synaptic loss and dysfunction as well as neuronal cell death, which are involved in the pathogenesis and progression of several neurodegenerative diseases. Thus, the regulation of microglial activation has been evaluated as effective therapeutic strategies. Although dieckol (DEK), one of the phlorotannins isolated from marine brown alga Ecklonia cava, has been previously reported to inhibit microglial activation, the molecular mechanism is still unclear. Therefore, we investigated here molecular mechanism of DEK via extracellular signal-regulated kinase (ERK), Akt and nicotinamide adenine dinuclelotide phosphate (NADPH) oxidase-mediated pathways. In addition, the neuroprotective mechanism of DEK was investigated in microglia-mediated neurotoxicity models such as neuron-microglia co-culture and microglial conditioned media system. Our results demonstrated that treatment of anti-oxidant DEK potently suppressed phosphorylation of ERK in lipopolysaccharide (LPS, 1 µg/ml)-stimulated BV-2 microglia. In addition, DEK markedly attenuated Akt phosphorylation and increased expression of gp91(phox), which is the catalytic component of NADPH oxidase complex responsible for microglial reactive oxygen species (ROS) generation. Finally, DEK significantly attenuated neuronal cell death that is induced by treatment of microglial conditioned media containing neurotoxic secretary molecules. These neuroprotective effects of DEK were also confirmed in a neuron-microglia co-culture system using enhanced green fluorescent protein (EGFP)-transfected B35 neuroblastoma cell line. Taken together, these results suggest that DEK suppresses excessive microglial activation and microglia-mediated neuronal cell death via downregulation of ERK, Akt and NADPH oxidase-mediated pathways.
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spelling pubmed-44229612015-05-07 Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways Cui, Yanji Park, Jee-Yun Wu, Jinji Lee, Ji Hyung Yang, Yoon-Sil Kang, Moon-Seok Jung, Sung-Cherl Park, Joo Min Yoo, Eun-Sook Kim, Seong-Ho Ahn Jo, Sangmee Suk, Kyoungho Eun, Su-Yong Korean J Physiol Pharmacol Original Article Excessive microglial activation and subsequent neuroinflammation lead to synaptic loss and dysfunction as well as neuronal cell death, which are involved in the pathogenesis and progression of several neurodegenerative diseases. Thus, the regulation of microglial activation has been evaluated as effective therapeutic strategies. Although dieckol (DEK), one of the phlorotannins isolated from marine brown alga Ecklonia cava, has been previously reported to inhibit microglial activation, the molecular mechanism is still unclear. Therefore, we investigated here molecular mechanism of DEK via extracellular signal-regulated kinase (ERK), Akt and nicotinamide adenine dinuclelotide phosphate (NADPH) oxidase-mediated pathways. In addition, the neuroprotective mechanism of DEK was investigated in microglia-mediated neurotoxicity models such as neuron-microglia co-culture and microglial conditioned media system. Our results demonstrated that treatment of anti-oxidant DEK potently suppressed phosphorylation of ERK in lipopolysaccharide (LPS, 1 µg/ml)-stimulated BV-2 microglia. In addition, DEK markedly attenuated Akt phosphorylation and increased expression of gp91(phox), which is the catalytic component of NADPH oxidase complex responsible for microglial reactive oxygen species (ROS) generation. Finally, DEK significantly attenuated neuronal cell death that is induced by treatment of microglial conditioned media containing neurotoxic secretary molecules. These neuroprotective effects of DEK were also confirmed in a neuron-microglia co-culture system using enhanced green fluorescent protein (EGFP)-transfected B35 neuroblastoma cell line. Taken together, these results suggest that DEK suppresses excessive microglial activation and microglia-mediated neuronal cell death via downregulation of ERK, Akt and NADPH oxidase-mediated pathways. The Korean Physiological Society and The Korean Society of Pharmacology 2015-05 2015-04-30 /pmc/articles/PMC4422961/ /pubmed/25954126 http://dx.doi.org/10.4196/kjpp.2015.19.3.219 Text en Copyright © Korean J Physiol Pharmacol and MEDrang Inc. http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
Cui, Yanji
Park, Jee-Yun
Wu, Jinji
Lee, Ji Hyung
Yang, Yoon-Sil
Kang, Moon-Seok
Jung, Sung-Cherl
Park, Joo Min
Yoo, Eun-Sook
Kim, Seong-Ho
Ahn Jo, Sangmee
Suk, Kyoungho
Eun, Su-Yong
Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title_full Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title_fullStr Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title_full_unstemmed Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title_short Dieckol Attenuates Microglia-mediated Neuronal Cell Death via ERK, Akt and NADPH Oxidase-mediated Pathways
title_sort dieckol attenuates microglia-mediated neuronal cell death via erk, akt and nadph oxidase-mediated pathways
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4422961/
https://www.ncbi.nlm.nih.gov/pubmed/25954126
http://dx.doi.org/10.4196/kjpp.2015.19.3.219
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